Comparative study on the effects of glutamic acid and glutamine in promoting intestinal development in chicks through energy metabolism

Article information

Anim Biosci. 2026;39.250445
Publication date (electronic) : 2025 September 30
doi : https://doi.org/10.5713/ab.25.0445
1School of Biological Engineering, Henan University of Technology, Zhengzhou, China
*Corresponding Author: Guohao Yang, Tel: +86-371-67756513, E-mail: ygh654855805@163.com, Junjun Guan, Tel: +86-371-67756513, E-mail: junjunguan@163.com
aThese authors contributed equally to this work.
Received 2025 June 17; Revised 2025 August 17; Accepted 2025 September 11.

Abstract

Objective

This study evaluated the effects of glutamic acid (Glu) and glutamine (Gln) on the intestinal development of layer chicks with lipopolysaccharide (LPS)-induced damage.

Methods

A total of 240 healthy 0-d-old Hy-Line Brown chicks were randomly assigned to 4 treatments, each with 6 replicates. At 8 and 11 d of age, all birds (except for the control group) received two administrations of LPS. The LPS-challenged birds were divided into three dietary treatment groups: a basal diet (without additives), a 0.05% Glu-supplemented diet, and a 0.20% Gln-supplemented diet.

Results

The LPS challenge induced intestinal injury and suppressed intestinal development in layer chicks, as evidenced by reduced growth performance, poor intestinal parameters, and morphology (p<0.05). Compared to the LPS group, dietary supplementation with 0.05% Glu and 0.20% Gln enhanced average daily gain (ADG), average daily feed intake, body weight (BW), and intestinal development parameters (including length, weight, villus height, and villus height/crypt depth) of duodenum, jejunum and ileum (p<0.05). These results could be attributed to upregulated mRNA expression levels of Mucin-2, E-cadherin, Dclk-1, Vil-1, Lysozyme, ChgA, Lgr-5, Bmi-1, ATP5F1AZ, and β-catenin (p<0.05). Furthermore, dietary supplementation with 0.20% Gln outperformed 0.05% Glu in enhancing BW, ADG, and ileum parameters (weight, length, epithelial cell count, and energy metabolism) (p<0.05). Additionally, intestinal organoids supplemented with 10 μM Gln had higher mean area, E-cadherin gene expression, and ATP content compared with those treated with 5 μM Glu in vitro (p<0.05).

Conclusion

Dietary supplementation with 0.05% Glu and 0.20% Gln could improve growth performance, intestinal development, and repair intestinal damage in layer chicks through enhanced epithelial proliferation and differentiation. Moreover, 0.20% Gln performed better than 0.05% Glu, which may be attributed to superior energy metabolism.

INTRODUCTION

The laying chicken industry plays a crucial role in agricultural production, and China’s egg production reached 35.88 million tons in 2024. Impaired early intestinal development in laying chickens can cause irreversible damage to their subsequent growth and production. An insufficient energy supply is considered one of the most important reasons [1]. Upon hatching, the chick’s intestinal development is still immature, which limits its ability to digest feed and utilize nutrients [2], which are derived from the residual yolk and absorbed via the intestines [3]. However, this absorption process is too slow to meet the high energy demands of rapid intestinal development. Furthermore, after hatching, the chick’s small intestine undergoes morphological, cellular, and molecular modifications to prepare for the switch to an external food source [4], a process that is highly stressful and energy-consuming. In conclusion, promoting intestinal development and maintaining intestinal barrier integrity require a substantial energy supply. Thus, identifying appropriate exogenously added energy substrates is crucial for the early intestinal development of layer chicks.

Glutamine (Gln) and glutamic acid (Glu), which are supposed to be primary energy substrates for the rapidly renewing intestinal epithelium [5,6], have been demonstrated to aid in repairing intestinal damage [7,8]. However, it has also been observed that higher-than-optimal dosages of these nutrients do not provide additional benefits to intestinal health and may even suppress growth performance and intestinal development [9,10]. Thus, further research is required to investigate the appropriate dosages of Gln and Glu for energy supply in layer chicks.

In fact, Gln and Glu, as interconvertible amino acids, are involved in ATP synthesis through the tricarboxylic acid cycle, but their energy-supplying efficacy may vary depending on physiological factors and developmental stages [11,12]. Gln is recognized as a conditionally essential amino acid and can be utilized to meet increased energy demands under stress conditions [13]. In contrast, no reports suggest that Glu possesses similar properties under stress conditions. Moreover, the differences between these 2 amino acids in the intestinal development of chicks remain insufficiently clarified [14], particularly due to the severe lack of systematic comparative research in layer chicks.

Therefore, the present study aimed to compare the effects of Glu and Gln on promoting intestinal development and alleviating injury in layer chicks using both in vivo and in vitro models. The impacts of dietary supplementation with Glu and Gln on growth performance, intestinal development, intestinal morphology, and energy metabolism were investigated in vivo. Additionally, the impacts of supplemented Glu and Gln on the growth-related gene abundances, development, and energy metabolism were evaluated in intestinal organoids.

MATERIALS AND METHODS

Birds and experimental design

A total of 240 healthy 0-d-old Hy-Line Brown chicks were randomly assigned to 4 treatments, each with 6 replicates (10 birds per replicate). Except for the control group, all birds were injected with LPS (1 mg/kg body weight [BW], Solarbio) twice in the abdomen at 8 and 11 d of age. The LPS-challenged birds were divided into three dietary treatment groups: basal diet (without additives), 0.05% Glu-supplemented diet, and 0.20% Gln-supplemented diet, with Glu and Gln sourced from Macklin Biochemical Technology. Our unpublished data (Supplements 14) indicated that optimal growth performance and intestinal development occurred with 0.05% Glu and 0.20% Gln supplementation, respectively. Therefore, these dosages were selected for this investigation. The housing area and feeding apparatus were meticulously cleaned and sanitized in strict compliance with the recommended methodology before the experiment’s commencement. Regular control of the ventilation system and prompt rubbish collection ensured the air purity of the housing area. The housing area was cleaned regularly. Before introducing the layer chicks, the housing area temperature was increased to 33°C and decreased by 3°C each week until it reached 27°C. Water and feed were readily available throughout the trial. Formulated according to the NRC [15] and the Chinese Feeding Standard of Chicken (NY/T 33-2004) [16], the experimental diets were prepared. The basic diet composition and nutrient level were displayed in Table 1 during the 3-week experiment.

Basic diet formula and nutrient level of layer chicks (air-dry basis)

Growth performance and sample collection

The BW of layer chicks was measured at 0, 7, 14, and 21 d in this study, and the amount of feed consumed each week was recorded. The average daily gain (ADG), average daily feed intake (ADFI), and feed conversion ratio (FCR, feed intake/BW gain, g:g) were calculated. The time of death, feed allowance, and weight of birds were noted once the death of a chick was observed. At 7, 14, and 21 d of age, 2 chicks (at average BW) were chosen randomly from 6 replicates in each group and weighed before slaughter. To investigate the effects of dietary supplementation with appropriate levels of Glu and Gln on intestinal development, the weight and length of the duodenum, jejunum, and ileum were measured.

Approximately 1.5 cm sections of the duodenum, jejunum, and ileum were obtained after slaughter and washed with phosphate-buffered saline (PBS, Solarbio), preserved in 4% neutral buffered paraformaldehyde for intestinal morphology sectioning and microscopic analysis using hematoxylin and eosin (H&E) staining. To evaluate the mRNA expression of target genes (Supplement 5), mucosal samples were obtained by opening the remaining ileum sections along their length. These samples were then rapidly submerged and stored in liquid nitrogen.

Intestinal morphology

The samples from 3 intestinal segments were embedded, stained, and viewed under a biological microscope (Ningbo Sunny Instrument) according to the published method [17]. The corresponding average of each chick was recorded as the mean of all measurements per sample. The intestinal sections were evaluated for morphology utilizing villus height (VH), crypt depth (CD), and the villus height to crypt depth ratio (VCR) [18].

Quantification of mRNA with real-time polymerase chain reaction

The FreeZol Reagent (Vazyme) was utilized to extract total RNA from organoids and mucosa samples following the manufacturer’s instructions. A microvolume spectrophotometer (Keen Innovative Solutions) was used to measure the yield and purity of RNA, and the A260/A280 ratio exceeded 1.8. The RNA was stored at −80°C for subsequent cDNA synthesis. Following the manufacturer’s instructions, a reverse transcription kit (Vazyme) was used to convert the extracted total RNA into cDNA. The qTOWER 3G real-time fluorescence quantitative polymerase chain reaction (qPCR) equipment (Analytik Jena) was used to perform real-time fluorescence quantitative PCR using a Taq SYBR Green qPCR Premix kit. The procedure included an initial denaturation step at 95°C for 30 s. Following this step were 40 cycles of denaturation (at 95°C for 15 s each) and annealing and extension (each lasting 30 s at 60°C). The primer sequences of the investigated genes are listed in Supplement 6 and were produced by Shanghai Shenggong Bioengineering, some of which are referenced from earlier reports [19,20]. β-actin was used as the internal reference gene, and the 2−ΔΔCT method was utilized for the analysis and comparison of the mRNA relative expression levels.

Energy metabolism

The ATP content, Na+-K+-ATPase activity, and Ca2+-Mg2+-ATPase activity in the intestinal mucosa and organoids were determined using a colorimetric method according to the published study [21]. These assays were performed using kits (A095-1-1 and A016-2) from Nanjing Jiancheng Bioengineering Institute.

Isolation and culture of intestinal crypts

The crypt separation and culture method was established after minor modifications based on previous reports [19,22], and the general process is shown in Figure 1. The jejunum segment from 7-d-old layer chicks is placed in a cell culture dish and set on ice. After the intestinal segment was cut longitudinally and washed with PBS, it was divided into pieces (0.3–0.5 cm) and gently agitated. The supernatant was then removed and replaced with a cold solution of Dulbecco’s PBS (DPBS; Solarbio), which included 5 mM ethylenediaminetetraacetic acid (EDTA; Solarbio). Following incubation, the mixture was shaken vigorously and filtered through 100 and 75 μm cell strainers, and purified crypts were obtained. Afterward, the organoid growth medium (OGM; the manufacturing method is detailed in Supplement 6) and Matrigel were added and mixed thoroughly to resuspend the purified crypts, which were then cultured in an incubator at 37°C with 5% CO2. Inverted microscopy was used to obtain live images of intestinal organoids (Cossim).

Figure 1

The general procedure for intestinal crypt isolation and culture of layer chicks.

To investigate the effects of energy substrates on organoid growth, the established intestinal organoids were cultured in OGM supplemented with a range of concentrations (5, 10, 100, and 1,000 μM) of both Glu and Gln to identify the optimal concentrations of these 2 energy substrates, respectively. In addition, detailed methods for 5-ethynyl-2′-deoxyuridine (EdU) labeling and immunofluorescence, designed to elucidate the morphological structure of the established organoid model, are provided in Supplement 7.

Statistical analysis

The replicate, each in 1 cage, serves as the growth performance analysis experimental unit. The experimental unit used to measure and analyze other parameters was two chicks per replication. For data analysis, ver. 9.2 of the software from SAS Institute, was utilized. First, the homogeneity of variances and data normality were examined, and the Shapiro-Wilk test was used to assess normality. After that, a one-way ANOVA was performed, and Tukey’s Multiple Comparison Test was applied to compare the means. p<0.05 was used to determine statistical significance for differences, and the results were presented as mean and pooled standard error of the mean (SEM).

RESULTS

Impact of glutamic acid and glutamine on the growth performance of layer chicks

The impact of dietary supplementation with 0.05% Glu and 0.20% Gln on the growth performance of layer chicks is presented in Table 2. No differences in BW were noted at the beginning of the trial among all treatment groups of layer chicks. Between the control and LPS groups, no differences were observed before LPS injection (0 to 7 d). The BW values in the Glu and Gln groups were greater than those in the control and LPS groups at 7 d, and a considerably higher value of ADG (0 to 7 d) was noted in the Gln group (p<0.05). During the LPS challenge (7 to 21 d), ADG (7 to 14 d, 14 to 21 d, 0 to 21 d), ADFI (7 to 14 d, 0 to 21 d), BW (14 and 21 d), and FCR (7 to 14 d, 0 to 21 d) were all lower in the LPS group than in the control group (p<0.05). Following LPS injection, higher values of the BW (14 and 21 d), ADG (7 to 14 d, 0 to 21 d), ADFI (7 to 14 d, 0 to 21 d), and FCR (7 to 14 d, 14 to 21 d, 0 to 21 d) were observed in the Glu and Gln groups compared with the LPS group. Furthermore, ADG (14 to 21 d) was higher in the Gln group than in the control and LPS groups (p<0.05), whereas it was only higher in the Glu group than in the LPS group. Meanwhile, a higher value of ADG (0 to 21 d) was observed in the Gln treatment compared with the Glu treatment (p<0.05).

Effects of dietary supplementation with Glu and Gln on the growth performance of layer chicks

Impact of glutamic acid and glutamine on the small intestine injury repair of layer chicks

The effects of dietary supplementation with 0.05% Glu and 0.20% Gln on the development of the duodenum, jejunum, and ileum in layer chicks are depicted in Table 3. The parameters in the LPS and control groups were not different before LPS administration. In terms of jejunum (weight and index), ileum (weight, index, and length), and total values (weight and index), the Glu and Gln groups performed better at 7 d than the control and LPS groups (p<0.05). Furthermore, the length of the duodenum and jejunum was longer in the Gln group than in the control and LPS groups (p<0.05). After the LPS challenge, lower values of the duodenum (weight, 14 and 21 d), jejunum (weight, index, and length, 14 and 21 d), ileum (weight and index, 14 d; weight and length, 21 d) and total values (weight and index, 14 and 21 d) were observed in the LPS group compared with the control group (p<0.05). Except for the duodenum (index, 14 and 21 d), ileum (index, 21 d), and total value (index, 21 d), all parameters enhanced in the Glu and Gln treatments in comparison to the LPS group after receiving LPS administration (p<0.05). The duodenum (weight, 21 d), jejunum (weight, 21 d), ileum (weight and index, 14 and 21 d; length, 14 d), and total values (weight and index, 21 d) were substantially greater in the Gln group than in the control group. However, compared to the control group, only the jejunum (weight, 14 and 21 d; length, 21 d) showed a increase in the Glu group (p<0.05). Furthermore, the duodenum (weight and index, 21 d), jejunum (weight and index, 21 d), ileum (weight and index, 14 and 21 d; length, 21 d), and total values (weight and index, 21 d) increased in the Gln group compared with the Glu group (p<0.05).

Effects of dietary supplementation with Glu and Gln on the small intestine injury repair of layer chicks

Impact of glutamic acid and glutamine on the intestinal morphology of layer chicks

As shown in typical intestinal longitudinal sections, the intestinal morphology in Glu/LPS and Gln/LPS treatments was superior to that observed in the LPS treatment (Figure 2A). Figure 2B displays the modifications in intestinal morphology resulting from 0.05% Glu and 0.20% Gln supplementation in the diet. Prior to the LPS injection (7 d), there was no discernible difference in the parameters between the control and LPS groups. Meanwhile, the greater values of the VH (ileum and jejunum) were noted in the Glu and Gln groups in comparison to the control group (p<0.05). Furthermore, the Gln group had a higher VCR of the ileum compared with the control and LPS groups (p<0.05). Except for the CD of the ileum at 21 d, there were no discernible variations in the CD of the intestine among the groups. After LPS injection (14 and 21 d), the lower value of all parameters except for CD (duodenum and jejunum, 14 and 21 d; ileum, 14 d), VH (ileum and jejunum, 14 d), and VCR (jejunum, 14 d; ileum, 21 d) were observed in the LPS group in comparison to the control group (p<0.05). Otherwise, the VH (ileum, 14 and 21 d; jejunum, 21 d) increased in the Glu and Gln groups compared with the control group (p<0.05). Concurrently, compared to the LPS group, larger values of all parameters except for intestinal CD (14 and 21 d) and jejunum (VH and VCR, 14 d) were observed in the Glu and Gln groups compared with the control group (p<0.05). However, no discernible difference was observed in parameters between the Glu and Gln groups.

Figure 2

Impact of dietary supplementation with Glu and Gln on the intestinal morphology of layer chicks (Hematoxylin and eosin staining). Control = fed the basal diet; LPS = fed the basal diet and received lipopolysaccharide (LPS) administration; Glu/LPS = fed the basal diet supplemented with 0.05% glutamic acid and received LPS administration; Gln/LPS = fed the basal diet supplemented with 0.20% glutamine and received LPS administration. The mean of 6 replicates is used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine.

Impact of glutamic acid and glutamine on the gene abundances in the ileum of layer chicks

To confirm the specificity of the RT-PCR reaction, a representative image of RT-PCR results is provided (Figure 3A). The gene abundances of the selected genes in the ileum are depicted in Figure 3B. Compared to the control and LPS treatments, the Gln treatment had increased gene abundances of E-cadherin, Mucin-2, Bmi-1, and Lgr-5 before the LPS injection (7 d), and enhanced gene abundances of Lysozyme, Vil-1, and Bmi-1 were noted at 7 d in the Glu treatment (p<0.05). Following LPS injection (14 and 21 d), the mRNA relative expressions of ChgA, E-cadherin, Mucin-2, and Bmi-1 at 14 d, and those of Dclk-1, Lysozyme, and β-catenin at 21 d dropped in the LPS treatment compared with the control treatment (p<0.05). Meanwhile, the Glu treatment showed substantially enhanced gene abundances of ChgA, E-cadherin, and ATP5F1AZ at 14 d, as well as E-cadherin, Lysozyme, Vil-1, and β-catenin at 21 d compared with the LPS treatment (p<0.05). However, compared to the LPS treatment, substantially higher values of target gene abundances were observed in the Gln treatment at 14 and 21 d (p<0.05). Moreover, higher values of target gene abundances at 14 d, except for E-cadherin, and those of ChgA, Dclk-1, β-catenin, Bmi-1, and Lgr-5 at 21 d were observed in the Gln treatment compared with the Glu treatment (p<0.05).

Figure 3

The effects of dietary supplementation with 0.05% Glu and 0.20% Gln on the gene abundances in the ileum of layer chicks. (A) A representative image of RT-PCR results from lane 1 to lane 15 are, DNA ladder (100, 200, 300, 400, 500 and 600 bp), ChgA (337 bp), Mucin-2 (357 bp), Vil-1 (141 bp), ATP5F1AZ (180 bp), β-catenin (374 bp), Bmi-1 (255 bp), Lgr-5 (338 bp), β-actin (150 bp), DNA ladder, DNA ladder, Dclk-1 (196 bp), E-cadherin (226 bp), Lysozyme (71 bp), DNA ladder, respectively. (B) The mRNA relative expression of intestinal functional epithelial cells, stem cells marker genes, and energy metabolism-related genes in layer chicks. The mean of 6 replicates is used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine; PCR, polymerase chain reaction.

Effects of glutamic acid and glutamine supplementation on the energy metabolism in the small intestinal mucosa of layer chicks

The impact of 0.05% Glu and 0.20% Gln supplementation in the diet on energy metabolism in the small intestinal mucosa of layer chicks is presented in Table 4. No differences were observed among the treatment groups in the parameters of the duodenum. Compared to the control group, lower values of ATP content (ileum), Na+-K+-ATPase activity (jejunum and ileum), and Ca2+-Mg2+-ATPase activity (jejunum) were observed in the LPS group (p<0.05). Furthermore, higher values of ATP content, Na+-K+-ATPase activity, and Ca2+-Mg2+-ATPase activity were observed in the jejunum and ileum of layer chicks in the Glu and Gln groups compared with the LPS group (p<0.05). Additionally, the ATP content, Na+-K+-ATPase activity, and Ca2+-Mg2+-ATPase activity of the ileum increased in the Gln group compared with the Glu group (p<0.05), and no differences were observed in the remaining parameters.

Effects of dietary supplementation with Glu and Gln on the energy metabolism in small intestinal mucosa of layer chicks (14 d of age)

Impact of different glutamic acid and glutamine concentrations on the development of intestinal organoids

Representative images of immunofluorescence and EdU staining from the intestinal organoid model implied that the organoids had a lumen structure and intestinal stem cells located within the lumen proliferated and differentiated into epithelium (Figure 4). As shown in Figures 5A–5C, the mean organoid area enhanced in the 5 μM Glu treatment compared with the control group at 1, 3, and 5 d (p<0.05), however, no discernible changes were noted in the mean organoid number at 1, 3, and 5 d. Furthermore, lower values of the mean organoid number (1 d) and the mean organoid area (1, 3, and 5 d) were noted in the 1,000 μM Glu treatment compared with the 5 μM Glu treatment (p<0.05). However, no substantial changes were noted in the mean organoid number at 3 and 5 d (Figures 5A–5C). As shown in Figures 5D–5F, compared to the control group, there were no changes in the mean organoid number at 1 and 5 d in the 10 μM Gln treatment. However, the mean organoid number (3 d) and the mean organoid area (3 and 5 d) enhanced in the 10 μM Gln treatment (p<0.05). Additionally, compared to the 10 μM Gln treatment, the mean organoid number (1 and 3 d) and the mean organoid area (3 and 5 d) decreased in the 1,000 μM Gln treatment (Figures 5D–5F; p<0.05).

Figure 4

The representative images of immunofluorescence and EdU staining at 5 d of organoid culture. Scale bar, 200 μm. DAPI, 4′,6-diamidino-2-phenylindole; EdU, 5-ethynyl-2′-deoxyuridine.

Figure 5

Effects of Glu and Gln supplementation in the OGM on the development of intestinal organoids. The mean of 3 replicates was used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine; OGM, organoid growth medium.

Impact of appropriate glutamic acid and glutamine dosages on the development, gene expression and energy metabolism of intestinal organoids

The elevated values of the mean organoid number (1 d) and the mean organoid area (1 and 5 d) were observed in the 5 μM Glu and 10 μM Gln groups compared with the control group, as well as the mean organoid area in the 10 μM Gln group at 3 d (p<0.05; Figures 6A–6C). Additionally, the mean organoid area of the 10 μM Gln group was higher than that of the 5 μM Glu group at 5 d (p<0.05; Figure 6C). As shown in Figure 6D, no substantial changes were noted in the mRNA relative expressions of ChgA, Mucin-2, and Vil-1 among all groups. Compared to the control group, the mRNA relative expressions of Dclk-1, ATP5F1AZ, β-catenin, Bmi-1, and Lgr-5 increased in the 5 μM Glu and 10 μM Gln groups (p<0.05). Meanwhile, compared to the control group, higher values of the gene mRNA relative expressions of E-cadherin and Lysozyme were observed in the 10 μM Gln group (p<0.05), but there were no substantial changes in the 5 μM Glu group. Furthermore, the mRNA relative expression of E-cadherin enhanced in the 10 μM Gln treatment compared with the 5 μM Glu treatment (p<0.05). Additionally, as shown in Table 5, higher values of ATP content and Na+-K+-ATPase activity were observed in the 5 μM Glu and 10 μM Gln groups compared with the control group, and a higher value of Ca2+-Mg2+-ATPase activity was observed in the 10 μM Gln group (p<0.05). Furthermore, there were no differences in Na+-K+-ATPase activity and Ca2+-Mg2+-ATPase activity between the Glu and Gln groups, and the ATP content of intestinal organoids increased in the Gln group compared with the Glu group (p<0.05).

Figure 6

Effects of appropriate Glu and Gln dosages on the development and gene abundances of intestinal organoids. The mean of 3 replicates was used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine.

Effects of Glu and Gln supplementation in the OGM on the energy metabolism of intestinal organoids

DISCUSSION

Glu and Gln have been demonstrated to positively impact intestinal development and health status in various species, including pigs and chickens [23,24]. Nonetheless, several findings still suggest that higher dosages of Glu and Gln do not yield noticeable benefits in terms of the animal intestine [10,25]. Therefore, it is necessary to determine the optimal supplementation dosages during the chick stage of laying chickens. Based on our unpublished data (Supplements 14), dietary supplementation with 0.05% Glu and 0.20% Gln resulted in better growth performance and intestinal development than those of the control group. Thus, these 2 dosages for Glu and Gln were selected for this work. Besides, it is noteworthy that the lower dosage of Glu compared with Gln could be attributed to its nature as an acidic amino acid, where excessive amounts may negatively impact osmotic pressure and homeostasis [12].

Early intestinal development in chicks is susceptible to various factors (such as inadequate energy supply and diseases), which can lead to intestinal dysplasia and cause irreversible impacts on the subsequent growth and productivity of laying hens. Therefore, this study further investigated the effects of supplementing with appropriate dosages of Glu and Gln on growth performance and intestinal injury repair in layer chicks. An effective model of intestinal damage was established in this work by injecting LPS intraperitoneally, as evidenced by the fact that BW, ADG, and ADFI significantly decreased after LPS administration. This was in line with the previous study showing that intestinal damage models could be established through LPS injection in broilers [26]. Furthermore, the results of growth performance indicated that intraperitoneal injection of LPS in layer chicks caused a decrease in growth performance, which could be effectively mitigated by supplementing the diet with 0.05% Glu and 0.20% Gln. This was consistent with previous reports that supplementation with Glu and Gln could effectively improve growth performance [17,27]. Based on these findings, dietary supplementation with 0.05% Glu and 0.20% Gln effectively restored the reduction in growth performance of layer chicks caused by LPS. Additionally, at the end of the trial, the ultimate BW and ADG in the Gln treatment were significantly higher than those in the Glu treatment, which may be attributed to better intestinal development.

Intestinal development and growth performance are closely associated. Dietary supplementation with 0.05% Glu and 0.20% Gln improved LPS-impaired growth performance of the chicks, which may be attributed to their beneficial effects on small intestinal morphology and development [28]. Therefore, further research was conducted to investigate the impact of Glu and Gln on intestinal development and damage repair. The significant reductions in the weight and length of 3 intestinal segments in layer chicks demonstrated that LPS injection impeded the development of the small intestine. In this work, compared to the LPS treatment, dietary supplementation with Glu and Gln significantly improved the length, weight, and index of 3 intestinal segments in chicks that received LPS injection and offset the adverse impact of LPS administration on intestinal development. Additionally, the ileum parameters in the Gln group were higher compared with those in the Glu group after receiving LPS injection. Consistent with other reports, these findings suggested that Glu and Gln positively impacted intestine development, which may be attributed to improved intestinal morphology [9]. Based on the above analyses, the intestinal development of layer chicks was improved by dietary supplementation with 0.05% Glu and 0.20% Gln, and supplementation with 0.20% Gln had greater positive effects on ileum development than that of 0.05% Glu supplementation.

This study further investigated intestinal morphology, as healthy intestinal development is typically accompanied by favorable intestinal morphology. Notably, the injection of LPS impaired the morphology of the small intestine, as evidenced by the significant reduction in VH and VCR in this study. This finding was consistent with a previous report that LPS injection caused intestinal morphology damage in broilers [29]. Dietary supplementation with 0.05% Glu and 0.20% Gln significantly improved intestinal VH and VCR in 3 segments and ameliorated LPS-induced morphological damage. These results were in line with previous research showing that intestinal morphology was significantly enhanced by Glu and Gln [7,17,23]. Moreover, compared with 0.05% Glu addition, the values of all parameters numerically increased by 0.20% Gln addition, which may be attributed to the enhanced gene abundances of intestinal epithelial functional cells and stem cell marker genes [30]. All of these results indicated that early intestinal development and morphology in layer chicks could be improved by dietary supplementation with 0.05% Glu and 0.20% Gln, which could help alleviate the intestinal damage caused by LPS.

The maintenance of the intestinal mucosal structure depends on the growth and replacement of the intestinal epithelium [31], which are prerequisites and guarantees for forming a favorable intestinal morphology. The constant renewal and proliferation of IESCs are necessary for maintaining the homeostasis of the intestinal epithelium, among which there are two types of IESCs: fast-cycling IESCs and quiescent IESCs marked by Lgr-5 [32] and Bmi-1 [33], respectively. Lgr-5-marked fast-cycling IESCs could generate all epithelial cell types of mature intestinal epithelium, such as tuft cells, goblet cells, enteroendocrine cells, absorptive enterocytes, and Paneth cells [34,35]. Furthermore, Bmi-1-marked quiescent IESCs can generate fast-cycling IESCs marked by Lgr-5 under stressful circumstances [36]. Therefore, in this research, the mRNA relative expressions of E-cadherin, Vil-1, ChgA, Dclk-1, Lysozyme, Mucin-2, Lgr-5, and Bmi-1 genes were measured, which were expected to act as the markers for the epithelium, absorptive enterocytes, enteroendocrine cells, tuft cells, Paneth cells, goblet cells, fast-cycling IESCs, and quiescent IESCs [19,37,38]. The results of gene abundance indicated that dietary supplementation with 0.05% Glu and 0.20% Gln could enhance the abundance of these genes, mitigating the reductions induced by LPS injection. This aligns with a previous study showing that dietary melatonin supplementation upregulated Mucin-2 gene expression and counteracted the adverse effects of LPS administration [39]. Moreover, the benefits of 0.20% Gln addition on the gene abundances in the ileum were notably greater than those of 0.05% Glu supplementation treatment, which may be attributed to the superior energy metabolism [5]. According to these findings, the quantity of intestinal epithelial functional cells and stem cells could be enhanced by 0.05% Glu and 0.20% Gln addition treatments, and 0.20% Gln addition had better effects in the ileum than 0.05% Glu addition treatment.

Essential for maintaining epithelial integrity is the E-cadherin/β-catenin complex, and ATP synthase is responsible for the synthesis of ATP required by cells [40,41]. Furthermore, β-catenin is proposed to be necessary for the differentiation, proliferation, and renewal of stem cells [42], and energy metabolism is crucial for the maintenance and differentiation of stem cells [43]. Thus, the gene abundances (ATP5F1AZ and β-catenin) and energy metabolism levels were evaluated in this research. In this work, the gene abundances (ATP5F1AZ and β-catenin) and energy metabolism levels were negatively impacted by the administration of LPS. The notably higher gene abundances of intestinal epithelial functional cell and stem cell marker genes were previously observed in Glu and Gln addition treatments compared with the LPS group, which may be attributed to the significantly higher gene abundances (ATP5F1AZ and β-catenin) and energy metabolism levels than those of LPS treatment. These findings were similar to previous findings that intestinal epithelial functional cell and stem cell marker gene expressions increased in tandem with the gene abundance of β-catenin [44]. Additionally, compared to the Glu treatment, significantly higher values of ATP content, Na+-K+-ATPase activity, Ca2+-Mg2+-ATPase activity, and gene abundances (ATP5F1AZ and β-catenin) in the ileum were observed in the Gln supplemental treatment, which might confirm that Gln had better effects on the number of intestinal epithelial functional cells and stem cells in the ileum than those of the Glu supplemental treatment. Based on the above analysis, supplementation with 0.05% Glu and 0.20% Gln could promote the proliferation and differentiation of intestinal stem cells by improving energy metabolism. However, 0.20% Gln supplementation produced superior effects compared to 0.05% Glu.

To further verify the differences in the effects of Glu and Gln on the intestinal development of layer chicks, the intestinal organoid model was adopted in this work. Notably, no prior research has directly compared the effects of Glu and Gln supplementation on intestinal organoids. However, the application of intestinal organoids has promoted the research on disease pathogenesis, functional nutrients, and drug screening, for instance, in the pig species [30,45]. Therefore, in this study, intestinal organoids were cultured in the OGM supplemented with a range of Glu and Gln concentrations. Subsequently, 5 μM Glu and 10 μM Gln were selected to further investigate and compare their effects on intestinal organoid development at these appropriate concentrations. The results revealed that supplementation with 5 μM Glu and 10 μM Gln significantly improved the development of intestinal organoids compared to the control group. Furthermore, the final mean organoid area with 10 μM Gln supplementation was significantly greater than that observed with 5 μM Glu, which may be attributed to the higher number of functional cells and superior energy metabolism [44]. Thus, the gene abundances of growth-related genes and energy metabolism levels were measured. Compared with the control group, the gene abundances (Dclk-1, ATP5F1AZ, β-catenin, Bmi-1, and Lgr-5) and energy metabolism levels significantly increased in the Glu and Gln addition groups. These results indicated that 5 μM Glu and 10 μM Gln supplementation in the OGM might boost the development of intestinal organoids by stimulating the proliferation and differentiation of intestinal epithelial stem cells driven by energy supply [30]. Moreover, the gene abundances and energy metabolism levels of intestinal organoids were increased by OGM supplementation with Glu and Gln in vitro, which was consistent with the upregulation observed with dietary supplementation with Glu and Gln in vivo. Additionally, a significantly higher gene abundance of the epithelium marker gene E-cadherin was observed in the Gln treatment compared with the Glu treatment, which may be due to the significant rise in ATP content. Based on these findings, the mean area, gene abundance, and energy metabolism levels of intestinal organoids could be improved by 5 μM Glu and 10 μM Gln, among which 10 μM Gln had a greater effect.

CONCLUSION

Dietary supplementation with 0.05% Glu and 0.20% Gln could alleviate the intestinal damage caused by LPS injection, as evidenced by improved intestinal development, intestinal morphology, and growth performance in layer chicks. Moreover, intestinal organoids derived from layer chicks and cultured in the OGM supplemented with 5 μM Glu and 10 μM Gln exhibited a significant increase in mean area and gene abundances compared with the control group. These findings could be attributed to the epithelial proliferation and differentiation, driven by improved energy metabolism caused by Glu and Gln supplementation. Furthermore, compared with 0.05% Glu supplementation, 0.20% Gln supplementation had a higher beneficial effect on growth performance, intestinal development, and intestinal injury repair in layer chicks, which might be attributed to higher energy metabolism levels.

Notes

CONFLICT OF INTEREST

No potential conflict of interest relevant to this article was reported.

AUTHORS’ CONTRIBUTION

Conceptualization: Huang P, Cui Y, Yang G, Guan J.

Data curation: Huang P, Cui Y, Liang W.

Formal analysis: Huang P, Cui Y, Liang W.

Methodology: Huang P, Cui Y, Yang G, Guan J.

Software: Huang P, Liang W.

Validation: Huang P.

Investigation: Liang W, Zhang L, Tian J, Gan L, Guo L, Chen W.

Writing - original draft: Huang P, Cui Y.

Writing - review & editing: Huang P, Cui Y, Liang W, Zhang L, Tian J, Gan L, Guo L, Chen W, Yang G, Guan J.

FUNDING

The National Natural Science Foundation of China (32202697), the Innovation Fund of Henan University of Technology (2022ZKCJ17), and the Henan University of Technology 2023 Youth Backbone Teacher Training Program provided funding for this work.

ACKNOWLEDGMENTS

The authors thank the support and assistance of the members of the Feed Engineering Technology Innovation Team from the Department of Animal Science, School of Biological Engineering, Henan University of Technology.

DATA AVAILABILITY

Upon reasonable request, the datasets of this study can be available from the corresponding author.

ETHICS APPROVAL

The methodologies complied with the applicable guidelines and regulations, and the Animal Care and Use Committee of Henan University of Technology approved the experimental protocol (Zhengzhou, Henan, China, HAUTETHI-2022-1099).

DECLARATION OF GENERATIVE AI

No AI tools were used in this article.

SUPPLEMENTARY MATERIAL

Supplementary file is available from: https://doi.org/10.5713/ab.25.0445

Supplement 1. Effects of Glu supplementation on the growth performance of layer chicks injected with LPS.

ab-25-0445-Supplementary-1.pdf

Supplement 2. Effects of Gln supplementation on the growth performence of layer chicks injected with LPS.

ab-25-0445-Supplementary-2.pdf

Supplement 3. Effects of Glu supplementation on the intestinal development of layer chicks injected with LPS.

ab-25-0445-Supplementary-3.pdf

Supplement 4. Effects of Gln supplementation on the intestinal development of layer chicks injected with LPS.

ab-25-0445-Supplementary-4.pdf

Supplement 5. Primers of intended and reference genes for layer chicks.

ab-25-0445-Supplementary-5.pdf

Supplement 6. Formulation and preparation of an organoid growth medium.

ab-25-0445-Supplementary-6.pdf

Supplement 7. The methods of immunofluorescence and 5-ethynyl-2′-deoxyuridine (EdU) labeling.

ab-25-0445-Supplementary-7.pdf

References

1. Yegani M, Korver DR. Factors affecting intestinal health in poultry. Poult Sci 2008;87:2052–63. https://doi.org/10.3382/ps.2008-00091.
2. Ravindran V, Abdollahi MR. Nutrition and digestive physiology of the broiler chick: state of the art and outlook. Animals 2021;11:2795. https://doi.org/10.3390/ani11102795.
3. Lilburn MS, Loeffler S. Early intestinal growth and development in poultry. Poult Sci 2015;94:1569–76. https://doi.org/10.3382/ps/pev104.
4. Cheled-Shoval SL, Amit-Romach E, Barbakov M, Uni Z. The effect of in ovo administration of mannan oligosaccharide on small intestine development during the pre- and posthatch periods in chickens. Poult Sci 2011;90:2301–10. https://doi.org/10.3382/ps.2011-01488.
5. Blachier F, Boutry C, Bos C, Tomé D. Metabolism and functions of L-glutamate in the epithelial cells of the small and large intestines. Am J Clin Nutr 2009;90:814S–21S. https://doi.org/10.3945/ajcn.2009.27462S.
6. Bortoluzzi C, Rochell SJ, Applegate TJ. Threonine, arginine, and glutamine: influences on intestinal physiology, immunology, and microbiology in broilers. Poult Sci 2018;97:937–45. https://doi.org/10.3382/ps/pex394.
7. Porto ML, Givisiez PEN, Saraiva EP, et al. Glutamic acid improves body weight gain and intestinal morphology of broiler chickens submitted to heat stress. Braz J Poult Sci 2015;3:355–62. https://doi.org/10.1590/1516-635x1703355-362.
8. Oxford JH, Selvaraj RK. Effects of glutamine supplementation on broiler performance and intestinal immune parameters during an experimental coccidiosis infection. J Appl Poult Res 2019;28:1279–87. https://doi.org/10.3382/japr/pfz095.
9. Nassiri Moghaddam H, Alizadeh-Ghamsari AH. Improved performance and small intestinal development of broiler chickens by dietary L-glutamine supplementation. J Appl Anim Res 2013;41:1–7. https://doi.org/10.1080/09712119.2012.738214.
10. Jiang F, Huang W, Zhou M, et al. Effects of dietary L-glutamic acid on the growth performance, gene expression associated with muscle growth-related gene expression, and intestinal health of juvenile largemouth bass (Micropterus salmoides). Fishes 2024;9:312. https://doi.org/10.3390/fishes9080312.
11. Reeds PJ, Burrin DG, Stoll B, Jahoor F. Intestinal glutamate metabolism. J Nutr 2000;130:978S–82S. https://doi.org/10.1093/jn/130.4.978S.
12. Newsholme P, Lima MMR, Procopio J, et al. Glutamine and glutamate as vital metabolites. Braz J Med Biol Res 2003;36:153–63. https://doi.org/10.1590/S0100-879X2003000200002.
13. Dai S, Bai X, Zhang D, et al. Dietary glutamine improves meat quality, skeletal muscle antioxidant capacity and glutamine metabolism in broilers under acute heat stress. J Appl Anim Res 2018;46:1412–7. https://doi.org/10.1080/09712119.2018.1520113.
14. Tapiero H, Mathë G, Couvreur P, Tew KD. II. Glutamine and glutamate. Biomed Pharmacother 2002;56:446–57. https://doi.org/10.1016/S0753-3322(02)00285-8.
15. National Research Council (NRC). Nutrient requirements of poultry 9th edth ed. National Academies Press; 1994.
16. Ministry of Agriculture of the People’s Republic of China. China national feeding standard of chicken (NY/T 33, 2004) China Agriculture Press; 2004.
17. Xue GD, Barekatain R, Wu SB, Choct M, Swick RA. Dietary L-glutamine supplementation improves growth performance, gut morphology, and serum biochemical indices of broiler chickens during necrotic enteritis challenge. Poult Sci 2018;97:1334–41. https://doi.org/10.3382/ps/pex444.
18. Daneshmand A, Kermanshahi H, Sekhavati MH, et al. Effects of cLFchimera peptide on intestinal morphology, integrity, microbiota, and immune cells in broiler chickens challenged with necrotic enteritis. Sci Rep 2020;10:17704. https://doi.org/10.1038/s41598-020-74754-x.
19. Zhao D, Farnell MB, Kogut MH, et al. From crypts to enteroids: establishment and characterization of avian intestinal organoids. Poult Sci 2022;101:101642. https://doi.org/10.1016/j.psj.2021.101642.
20. Cui Y, Huang P, Duan H, et al. Role of microencapsulated Lactobacillus plantarum in alleviating intestinal inflammatory damage through promoting epithelial proliferation and differentiation in layer chick. Front Microbiol 2023;14:1287899. https://doi.org/10.3389/fmicb.2023.1287899.
21. Ni M, Wang Z, Li Z, et al. Dietary supplement of sodium butyrate improves the growth performance and intestinal health by targeting WNT/β-catenin signaling pathway in rabbits. Anim Res One Health 2024;3:389–404. https://doi.org/10.1002/aro2.71.
22. Li J, Li J Jr, Zhang SY, et al. Culture and characterization of chicken small intestinal crypts. Poult Sci 2018;97:1536–43. https://doi.org/10.3382/ps/pey010.
23. Wu QJ, Liu N, Wu XH, Wang GY, Lin L. Glutamine alleviates heat stress-induced impairment of intestinal morphology, intestinal inflammatory response, and barrier integrity in broilers. Poult Sci 2018;97:2675–83. https://doi.org/10.3382/ps/pey123.
24. Chen S, Wu X, Duan J, et al. Low-protein diets supplemented with glutamic acid or aspartic acid ameliorate intestinal damage in weaned piglets challenged with hydrogen peroxide. Anim Nutr 2021;7:356–64. https://doi.org/10.1016/j.aninu.2020.12.005.
25. Wu Q, Wang C, Liao J, et al. Effects of dietary supplementation with glutamine on the immunity and intestinal barrier gene expression in broiler chickens infected with Salmonella enteritidis. Animals 2022;12:2168. https://doi.org/10.3390/ani12172168.
26. Jiang SQ, Chen ZL, Zhang S, Ye JL, Wang YB. Protective effects of protocatechuic acid on growth performance, intestinal barrier and antioxidant capacity in broilers challenged with lipopolysaccharide. animal 2023;17:100693. https://doi.org/10.1016/j.animal.2022.100693.
27. Kyoung H, Lee JJ, Cho JH, et al. Dietary glutamic acid modulates immune responses and gut health of weaned pigs. Animals 2021;11:504. https://doi.org/10.3390/ani11020504.
28. Zhang B, Zhong Q, Liu N, et al. Dietary glutamine supplementation alleviated inflammation responses and improved intestinal mucosa barrier of LPS-challenged broilers. Animals 2022;12:1729. https://doi.org/10.3390/ani12131729.
29. Zheng YW, Zhang JY, Zhou HB, et al. Effects of dietary pyrroloquinoline quinone disodium supplementation on inflammatory responses, oxidative stress, and intestinal morphology in broiler chickens challenged with lipopolysaccharide. Poult Sci 2020;99:5389–98. https://doi.org/10.1016/j.psj.2020.08.007.
30. Tian J, Li Y, Bao X, et al. Glutamine boosts intestinal stem cell-mediated small intestinal epithelial development during early weaning: involvement of WNT signaling. Stem Cell Rep 2023;18:1451–67. https://doi.org/10.1016/j.stemcr.2023.05.012.
31. Kaiko GE, Ryu SH, Koues OI, et al. The colonic crypt protects stem cells from microbiota-derived metabolites. Cell 2016;165:1708–20. https://doi.org/10.1016/j.cell.2016.05.018.
32. Barker N, van Es JH, Kuipers J, et al. Identification of stem cells in small intestine and colon by marker gene Lgr5. Nature 2007;449:1003–7. https://doi.org/10.1038/nature06196.
33. Smith NR, Gallagher AC, Wong MH. Defining a stem cell hierarchy in the intestine: markers, caveats and controversies. J Physiol 2016;594:4781–90. https://doi.org/10.1113/JP271651.
34. Li J, Li RX, Liu G, Lv CF, Mi YL, Zhang CQ. Effect of melatonin on renewal of chicken small intestinal mucosa. Poult Sci 2017;96:2942–9. https://doi.org/10.3382/ps/pex085.
35. Hou Q, Ye L, Liu H, et al. Lactobacillus accelerates ISCs regeneration to protect the integrity of intestinal mucosa through activation of STAT3 signaling pathway induced by LPLs secretion of IL-22. Cell Death Differ 2018;25:1657–70. https://doi.org/10.1038/s41418-018-0070-2.
36. Yan KS, Chia LA, Li X, et al. The intestinal stem cell markers Bmi1 and Lgr5 identify two functionally distinct populations. Proc Natl Acad Sci USA 2012;109:466–71. https://doi.org/10.1073/pnas.1118857109.
37. Leppänen J, Helminen O, Huhta H, et al. Doublecortin-like kinase 1-positive enterocyte: a new cell type in human intestine. APMIS 2016;124:958–65. https://doi.org/10.1111/apm.12599.
38. Yoshida S, Miwa H, Kawachi T, Kume S, Takahashi K. Generation of intestinal organoids derived from human pluripotent stem cells for drug testing. Sci Rep 2020;10:5989. https://doi.org/10.1038/s41598-020-63151-z.
39. Li RX, Li J, Zhang SY, Mi YL, Zhang CQ. Attenuating effect of melatonin on lipopolysaccharide-induced chicken small intestine inflammation. Poult Sci 2018;97:2295–302. https://doi.org/10.3382/ps/pey084.
40. Tian X, Liu Z, Niu B, et al. E-cadherin/β-catenin complex and the epithelial barrier. BioMed Res Int 2011;2011:567305. https://doi.org/10.1155/2011/567305.
41. García-Bermúdez J, Sánchez-Aragó M, Soldevilla B, del Arco A, Nuevo-Tapioles C, Cuezva JM. PKA phosphorylates the ATPase inhibitory factor 1 and inactivates its capacity to bind and inhibit the mitochondrial H+-ATP synthase. Cell Rep 2015;12:2143–55. https://doi.org/10.1016/j.celrep.2015.08.052.
42. Steinhart Z, Angers S. Wnt signaling in development and tissue homeostasis. Development 2018. 145dev146589. https://doi.org/10.1242/dev.146589.
43. Hu C, Fan L, Cen P, Chen E, Jiang Z, Li L. Energy metabolism plays a critical role in stem cell maintenance and differentiation. Int J Mol Sci 2016;17:253. https://doi.org/10.3390/ijms17020253.
44. Zhang Y, Li F, Lu Z, et al. L-malic acid facilitates stem cell-driven intestinal epithelial renewal through the amplification of β-catenin signaling by targeting frizzled7 in chicks. J Agric Food Chem 2023;71:13079–91. https://doi.org/10.1021/acs.jafc.3c01332.
45. Zhu M, Qin Y, Gao C, Yan H, Wang X. L-Glutamate drives porcine intestinal epithelial renewal by increasing stem cell activity via upregulation of the EGFR-ERK-mTORC1 pathway. Food Funct 2020;11:2714–24. https://doi.org/10.1039/C9FO03065D.

Article information Continued

Figure 1

The general procedure for intestinal crypt isolation and culture of layer chicks.

Figure 2

Impact of dietary supplementation with Glu and Gln on the intestinal morphology of layer chicks (Hematoxylin and eosin staining). Control = fed the basal diet; LPS = fed the basal diet and received lipopolysaccharide (LPS) administration; Glu/LPS = fed the basal diet supplemented with 0.05% glutamic acid and received LPS administration; Gln/LPS = fed the basal diet supplemented with 0.20% glutamine and received LPS administration. The mean of 6 replicates is used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine.

Figure 3

The effects of dietary supplementation with 0.05% Glu and 0.20% Gln on the gene abundances in the ileum of layer chicks. (A) A representative image of RT-PCR results from lane 1 to lane 15 are, DNA ladder (100, 200, 300, 400, 500 and 600 bp), ChgA (337 bp), Mucin-2 (357 bp), Vil-1 (141 bp), ATP5F1AZ (180 bp), β-catenin (374 bp), Bmi-1 (255 bp), Lgr-5 (338 bp), β-actin (150 bp), DNA ladder, DNA ladder, Dclk-1 (196 bp), E-cadherin (226 bp), Lysozyme (71 bp), DNA ladder, respectively. (B) The mRNA relative expression of intestinal functional epithelial cells, stem cells marker genes, and energy metabolism-related genes in layer chicks. The mean of 6 replicates is used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine; PCR, polymerase chain reaction.

Figure 4

The representative images of immunofluorescence and EdU staining at 5 d of organoid culture. Scale bar, 200 μm. DAPI, 4′,6-diamidino-2-phenylindole; EdU, 5-ethynyl-2′-deoxyuridine.

Figure 5

Effects of Glu and Gln supplementation in the OGM on the development of intestinal organoids. The mean of 3 replicates was used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine; OGM, organoid growth medium.

Figure 6

Effects of appropriate Glu and Gln dosages on the development and gene abundances of intestinal organoids. The mean of 3 replicates was used as the data. a–c Without any common superscripts, values amongst groups on the same day of age differ significantly (p<0.05), and the standard deviation (SD) is shown by the error bars. Glu, glutamic acid; Gln, glutamine.

Table 1

Basic diet formula and nutrient level of layer chicks (air-dry basis)

Items Contents (%)
Ingredient
 Corn 40.55
 Soybean meal 26.90
 Wheat bran 28.90
 Calcium phosphate 1.00
 Limestone 1.35
 Soybean oil 1.00
 DL-methionine 0.10
 Salt 0.10
 Premix1) 0.10
Nutrient level2)
 AME (MJ/kg) 11.71
 Crude protein 20.14 (20.17)
 Calcium 0.91 (0.92)
 Total phosphorus 0.77 (0.70)
 Available phosphorus 0.40
 Lysine 1.04
 Methionine+cystine 0.75
 Glutamic acid (1.91)
 Glutamine (1.44)
1)

The following premix is provided per kg of diet: vitamin D3 4,125 IU, biotin 2 mg, Cu 11 mg, riboflavin 8.5 mg, Mn 51 mg, vitamin K3 2 mg, thiamine 1 mg, vitamin E 15 IU, I 0.51 mg, folic acid 5 mg, vitamin B12 5 mg, Fe 60 mg, Se 0.16 mg, Zn 65 mg, vitamin A 12,500 IU, pyridoxine 8 mg, niacin 32.5 mg, and Ca-pantothenate 50 mg.

2)

The other nutrient levels are calculated values, and the levels in parentheses are analyzed values.

Table 2

Effects of dietary supplementation with Glu and Gln on the growth performance of layer chicks

Items1) Control LPS LPS SEM p-value

Glu Gln
BW (g)
 0 d 41.5 41.4 41.8 41.7 0.066 0.306
 7 d 80.8b 80.6b 82.4a 82.8a 0.285 0.006
 14 d 137b 126c 143a 145a 1.674 <0.001
 21 d 210c 190d 219b 225a 2.865 <0.001
0 to 7 d
 ADG (g) 5.59b 5.60b 5.80ab 5.87a 0.041 0.016
 ADFI (g) 11.8 11.6 11.8 11.8 0.065 0.679
 FCR 2.11 2.08 2.04 2.00 0.016 0.089
7 to 14 d
 ADG (g) 8.02b 6.44c 8.66a 8.87a 0.222 <0.001
 ADFI (g) 21.7a 19.3b 22.7a 22.3a 0.371 0.001
 FCR 2.71b 3.01a 2.63b 2.52b 0.059 0.014
14 to 21 d
 ADG (g) 10.5b 9.19c 10.9ab 11.4a 0.215 <0.001
 ADFI (g) 28.4 27.4 27.7 28.7 0.398 0.673
 FCR 2.72ab 2.99a 2.57b 2.52b 0.067 0.043
0 to 21 d
 ADG (g) 8.03c 7.08d 8.44b 8.72a 0.135 <0.001
 ADFI (g) 20.7a 19.4b 20.7a 20.9a 0.216 0.049
 FCR 2.57b 2.75a 2.46b 2.40b 0.038 0.002

The mean of 6 replicates, each with 10 birds, is used as the data.

1)

Control, fed the basal diet; LPS, fed the basal diet and received LPS administration; Glu, fed the basal diet supplemented with 0.05% Glu and received LPS administration; Gln, fed the basal diet supplemented with 0.20% Gln and received LPS administration.

a–d

Significant differences exist between means inside a row without a common superscript (p<0.05).

LPS, lipopolysaccharide; Glu, glutamic acid; Gln, glutamine; SEM, standard error of the mean; BW, body weight; ADG, average daily gain; ADFI, average daily feed intake; FCR, feed conversion ratio (feed:gain, g:g).

Table 3

Effects of dietary supplementation with Glu and Gln on the small intestine injury repair of layer chicks

Items1) Control LPS LPS SEM p-value

Glu Gln
7 d of age
 Duodenum
  Weight (g) 1.51 1.46 1.60 1.62 0.028 0.143
  Index (%) 1.87 1.81 1.96 1.96 0.027 0.131
  Length (cm) 11.65b 11.56b 12.15ab 12.38a 0.122 0.034
 Jejunum
  Weight (g) 2.17b 2.21b 2.58a 2.67a 0.059 <0.001
  Index (%) 2.68b 2.74b 3.14a 3.24a 0.060 <0.001
  Length (cm) 22.63bc 22.14c 24.16ab 24.33a 0.314 0.016
 Ileum
  Weight (g) 1.63b 1.53b 1.85a 1.96a 0.048 0.001
  Index (%) 2.02b 1.90b 2.26a 2.38a 0.051 <0.001
  Length (cm) 22.46b 22.24b 23.58a 24.06a 0.233 0.006
 Total
  Weight (g) 5.31b 5.20b 6.04a 6.26a 0.124 <0.001
  Index (%) 6.55b 6.45b 7.36a 7.58a 0.122 <0.001
  Length (cm) 56.73b 55.94b 59.88ab 60.77a 0.634 0.007
14 d of age
 Duodenum
  Weight (g) 2.29a 2.00b 2.35a 2.42a 0.044 <0.001
  Index (%) 1.67 1.59 1.64 1.67 0.016 0.265
  Length (cm) 13.65ab 13.05b 13.84a 14.17a 0.133 0.014
 Jejunum
  Weight (g) 3.21b 2.72c 3.46a 3.41ab 0.070 <0.001
  Index (%) 2.35a 2.16b 2.42a 2.35a 0.029 0.006
  Length (cm) 28.56a 26.01b 30.34a 29.87a 0.495 0.003
 Ileum
  Weight (g) 2.26b 1.94c 2.39b 2.60a 0.058 <0.001
  Index (%) 1.65b 1.54c 1.67b 1.79a 0.024 <0.001
  Length (cm) 24.88ab 23.12b 25.54a 26.50a 0.401 0.013
 Total
  Weight (g) 7.75a 6.66b 8.20a 8.43a 0.164 <0.001
  Index (%) 5.67a 5.29b 5.73a 5.81a 0.057 0.001
  Length (cm) 67.09ab 62.18b 69.72a 70.53a 0.936 0.002
21 d of age
 Duodenum
  Weight (g) 3.16b 2.74c 3.28b 3.52a 0.070 <0.001
  Index (%) 1.50ab 1.45b 1.49b 1.57a 0.014 0.011
  Length (cm) 15.26ab 14.52b 15.76a 16.10a 0.196 0.015
 Jejunum
  Weight (g) 4.30b 3.56c 4.39b 4.79a 0.104 <0.001
  Index (%) 2.05ab 1.88c 2.00b 2.13a 0.027 0.002
  Length (cm) 29.59b 27.49c 32.04a 30.83ab 0.480 0.001
 Ileum
  Weight (g) 2.63b 2.24c 2.74b 3.08a 0.077 <0.001
  Index (%) 1.25b 1.18b 1.25b 1.37a 0.022 0.012
  Length (cm) 26.28b 23.94c 27.19b 29.42a 0.530 <0.001
 Total
  Weight (g) 10.09b 8.53c 10.41b 11.39a 0.240 <0.001
  Index (%) 4.80b 4.50c 4.73bc 5.06a 0.051 <0.001
  Length (cm) 71.13ab 65.95b 74.99a 76.35a 1.121 <0.001

The mean of 6 replicates, each value averaged from 2 birds, is used as the data.

1)

Control, fed the basal diet; LPS, fed the basal diet and received LPS administration; Glu, fed the basal diet supplemented with 0.05% Glu and received LPS administration; Gln, fed the basal diet supplemented with 0.20% Gln and received LPS administration.

a–c

Significant differences exist between means inside a row without a common superscript (p<0.05).

LPS, lipopolysaccharide; Glu, glutamic acid; Gln, glutamine; SEM, standard error of the mean.

Table 4

Effects of dietary supplementation with Glu and Gln on the energy metabolism in small intestinal mucosa of layer chicks (14 d of age)

Items1) Control LPS LPS SEM p-value

Glu Gln
ATP content (μmol/g protein)
 Duodenum 17.29 15.81 17.01 17.59 0.323 0.232
 Jejunum 26.62ab 24.77b 28.30a 27.57a 0.480 0.042
 Ileum 22.56b 18.98c 22.98b 26.13a 0.664 <0.001
Na+-K+-ATPase (U/mg protein)
 Duodenum 5.06 4.95 5.21 5.07 0.086 0.804
 Jejunum 4.07b 3.39c 4.61a 4.25ab 0.120 <0.001
 Ileum 3.99b 3.44c 4.19b 4.89a 0.137 <0.001
Ca2+-Mg2+-ATPase (U/mg protein)
 Duodenum 4.95 4.67 5.18 5.11 0.087 0.159
 Jejunum 4.06b 3.30c 4.74a 4.38ab 0.134 <0.001
 Ileum 4.01bc 3.67c 4.11b 4.65a 0.098 <0.001

The mean of 6 replicates is used as the data.

1)

Control, fed the basal diet; LPS, fed the basal diet and received LPS administration; Glu, fed the basal diet supplemented with 0.05% Glu and received LPS administration; Gln, fed the basal diet supplemented with 0.20% Gln and received LPS administration.

a–c

Significant differences exist between means inside a row without a common superscript (p<0.05).

LPS, lipopolysaccharide; Glu, glutamic acid; Gln, glutamine; SEM, standard error of the mean.

Table 5

Effects of Glu and Gln supplementation in the OGM on the energy metabolism of intestinal organoids

Items1) Control Glu Gln SEM p-value
ATP content (μmol/g protein) 2.39c 3.70b 4.83a 0.373 0.001
Na+-K+-ATPase (U/mg protein) 3.64b 4.88a 5.47a 0.304 0.011
Ca2+-Mg2+-ATPase (U/mg protein) 3.42b 4.01ab 4.70a 0.226 0.035

The mean of 3 replicates is used as the data.

1)

Control, OGM was used for culture; Glu, OGM supplemented with 5 μM glutamic acid was used for culture; Gln, OGM supplemented with 10 μM glutamine was used for culture.

a–c

Significant differences exist between means inside a row without a common superscript (p<0.05).

Glu, glutamic acid; Gln, glutamine; OGM, organoid growth medium; SEM, standard error of the mean.