1. Introduction
Poultry lacks endogenous enzymes to digest β-1-4, β-1-3 and β-1-6 linkages of dietary fiber (DF). Traditionally, DF has been regarded as a nutrient concentration diluent and an anti-nutritional factor affecting feed intake and nutrient digestibility [
1,
2]. However, increasing evidence found that DF could contribute a positive impact on poultry growth performance [
3,
4,
5], gizzard development [
6], digestive tract traits [
7], intestinal morphology [
8], and microbial populations [
9]. Of note, when the content of DF was high, this would impair chickens’ growth performance [
10], while a moderate level of DF in poultry diets could increase chyme retention time in the upper part of the gastrointestinal tract (GIT), stimulating endogenous enzyme production and gizzard development, improving the digestibility of nutrients [
11].
In general terms, DF can be classified based on its solubility in water. Soluble fiber sources such as arabinoxylans from wheat and rye, pectins from fruits and sugar beet pulp, β-glucans from barley and oats, and inulin from chicory and Jerusalem artichoke increase digesta viscosity and decrease the rate of nutrient absorption [
9]. In contrast, insoluble fiber is rich in sunflower hulls and oat hulls, which pass through the intestine undigested and increase the digesta passage rate [
12]. It has been demonstrated that the supplementation of different fiber sources (soluble or insoluble) in the diets has beneficial effects for poultry [
13]. The soluble fiber is more rapidly fermented as compared with insoluble fiber, and the addition of soluble fiber to a broiler diet drastically increased SCFA production in the ileum [
13]. Additionally, several studies showed that insoluble fiber sources could improve digestive tract development and function, resulting in promoted chicken health and growth performance [
14,
15]. However, to our best knowledge, no previous studies have evaluated the potential effects of mixtures of soluble and insoluble fibers in different combinations that may improve poultry health and productivity. Inulin is a typical soluble fiber, which has been observed to promote a beneficial shift in the gut microbiota, leading to a reduction in pathogenic species and an increase in
Lactobacillus abundance [
16]. Cellulose is a typical representative of insoluble fiber; the use of diets including cellulose promotes poultry digestive organ development, especially gizzard activity, and improves bile acids and enzyme secretion [
14,
17]. We hypothesized that the addition of fiber sources with inulin and cellulose in an appropriate combination may be more beneficial than a single addition for broiler performance.
Therefore, the objective of this experiment was to investigate the effect of different combinations of inulin and cellulose on performance, GIT development, nutrient digestibility and intestinal function in broilers from 1 to 42 d of age. Furthermore, an antibiotic-treated group was carried out to evaluate whether the mixtures of inulin and cellulose can replace antibiotics in promoting the growth and health of broilers.
2. Materials and Methods
2.1. Animals
In total, 560 one-day-old male AA broilers with an initial body weight (BW) of 47 g ± 0.16 were obtained from a commercial farm and housed. The broilers were in a temperature and light-controlled house, and were weighed in groups and randomly assigned to seven dietary treatments with 8 replicate pens per treatment and 10 broilers per pen. Each pen (180 cm long × 120 cm wide × 60 cm high) was equipped with a single nipple drinker. Broilers were allowed ad libitum access to water and feed. The room temperature was initially set at 33 °C for the first week and gradually reduced to 24 °C by the end of the experiment.
2.2. Diets and Experimental Design
Diets were formulated to meet or exceed the nutritional recommendations NRC (1994) for broilers from 1 to 42 d [
18]. All diets were administered in mash form. Inulin and cellulose are added in different combinations, with the total addition ratio being 2%. There were seven experimental diets, a con-soybean control (CON) diet, CON diet supplemented with antibiotics (zinc bacitracin, 50 mg/kg, AB diet), 2% inulin was substituted for Zeolite powder in the CON diet (INU diet), 1.5% of inulin and 0.5% of cellulose substituted for Zeolite powder in the CON diet (MIX1 diet), 1.0% of inulin and 1.0% of cellulose substituted for Zeolite powder in the CON diet (MIX2 diet), 0.5% of inulin and 1.5% of cellulose substituted for Zeolite powder in the CON diet (MIX3 diet), and 2.0% of cellulose substituted for Zeolite powder in the CON diet (CEL diet). The compositions of ingredients and the calculated nutrients of diets are presented in
Table 1 and
Table 2. The purity of inulin (the degree of polymerization of 2–60, and an average of 12) and cellulose was 85% and 99% respectively, and were purchased from VILOF Group Co., Ltd. (Beijing, China) and Tianli Medical Supplements Co., Ltd. (Qufu, China), respectively.
2.3. Growth Performance
The broilers were determined at d 1, 21, and 42 of age, and feed intake per pen was measured daily to calculate average daily feed intake (ADFI), average daily weight gain (ADG), and the ratio of feed-to-gain (F/G).
2.4. Gastrointestinal Traits
At 21 and 42 days of age, one bird with the average BW of each pen was selected, slaughtered by CO2 asphyxiation, and individually weighed. The length of the duodenum, jejunum, and ileum was measured, and the relative length of each intestine was calculated according to the following equations: relative length = intestinal length (cm)/body weight (kg). The pH of the proventriculus, gizzard, duodenum, jejunum, ileum, cecum and rectum contents was detected using a digital pH meter (model PHS-3C, Leici Instruments, Shanghai, China).
2.5. Apparent Digestibility
From 17 to 21 days and 38 to 42 days, feces were collected from each pen, added with 10% hydrochloric acid to fix excreta nitrogen after collection, and were dried in a forced-air oven (65 °C) for 72 h. The apparent total tract digestibility was measured using acid-insoluble Ash (AIA) as a digestibility marker. AIA in feces and feed was determined by the method of the Chinese National Standard (GB/T 23742) [
19]. Chemical analysis of fecal and feed samples was conducted as follows. DM (method 930.15), Ash (method 942.05), EE (method 945.16), and CP (method 990.03) were assessed according to the procedures of AOAC (2000) [
20]. The digestibility was calculated by the following formula: apparent digestibility (%) = (100 − A1/A2 × F2/F1 × 100), in which F1 represents the nutrient content of the feed; F2 represents the nutrient content of the feces; A1 represents the AIA content of the feed; A2 represents the AIA content of the feces.
2.6. Histological Analysis
The villus height and crypt depth were determined according to Touchette et al. (2002) [
21]. The jejunum, duodenum, and ileum were washed with cold sterile saline and fixed with 4% paraformaldehyde solution. Then, they were dehydrated and embedded in paraffin wax before transverse sections were cut. The preserved samples were stained with hematoxylin and eosin. Twelve well-oriented parts of the height villi and their adjacent crypts per sample were detected by a NIKON DS-U3 image processing and analyzing system (NIKON ECLIPE CI, Tokyo, Japan) at 40× magnification. The villi height divided by the crypt depth gave the V/C ratio.
2.7. Determination of Enzyme Activity and Cytokine
For the digestive enzyme activity measurement, about 1 g frozen sample of jejunum mucosa was homogenized in ice-cold saline solution (1:9, w/v), centrifuged at 3500× g for 10 min at 4 °C, and stored at −80 °C for further analysis. The content of total protein was determined using the Bradford brilliant blue method. The activities of maltase, sucrase, lactase, lipase, Total antioxidant capacity (T-AOC), Total superoxide dismutase (T-SOD), and Catalase (CAT) were determined using commercial kits (Nanjing Jiancheng Bioengineering Institute, Nanjing, China) according to the manufacturer’s instructions. The tumor necrosis factor α (TNF-α) and interleukin-10 (IL-10) concentrations in the jejunum were measured using commercial enzyme-linked immunosorbent assay kits (Meimian Co., Ltd., Yancheng, China) according to the manufacturer’s instructions. Each index was tested in triplicate simultaneously on the same plate. In addition, the differences among parallels should be small (the coefficient of variation was less than 10%) to guarantee the repeatability of repeated assessments.
2.8. Gene Expression Related to Intestinal Function
Total RNA was isolated from the frozen jejunum using Trizol reagent (TaKaRa, Kyoto, Japan), following the manufacturer’s procedures. The concentration and purity of the RNA were detected using a NanoDrop ND-2000 spectrophotometer (NanoDrop, Waltham, MA, USA). The OD260/OD280 ratios ranging from 1.8 to 2.0 in all samples were considered suitable for further measurement. The integrity of RNA was measured by agarose gel electrophoresis, and the 28S:18S ribosomal RNA band ratio was evaluated to be ≥1.8. RNA was reverse transcribed into cDNA by the PrimeScriptTM RT reagent kit (TaKaRa, Kyoto, Japan), according to the manufacturer’s methods. Nt kit (TaKaRa, Kyoto, Japan) according to the manufacturer’s guidelines. Expression abundances of intestinal absorption (
SGLT-1, sodium/glucose cotransporter 1;
GLUT-2, glucose transporter type 2;
FATP4, fatty acid transport protein 4;
PepT1, peptide transporters 1;
EAAT3, excitatory amino acid transporters 3;
B0AT, system B0 neutral amino acid transporter), barrier function (
ZO-1, zonula occludens 1;
Occludin;
MUC1, mucin 1;
Claudin-1), inflammatory cytokines (
TNF-α, tumor necrosis factor α;
IL-6, interleukin-6 and
IL-10), and growth factors (
GLP-2, glucagon-like peptide-2;
TGF-β, transforming growth factor-β;
IGF-1, insulin-like growth factor-1)-related genes were measured by the Opticon DNA Engine (Bio-Rad, Hercules, CA, USA) and SYBR Green polymerase chain reaction (PCR) reagents (TaKaRa). Primers for the associated genes (
Table 3) were designed by Primer 6 software (PREMIER Biosoft International, Palo Alto, CA, USA) and commercially synthesized by Sangon Biotech Ltd. (Shanghai, China). The quantitative real-time PCR was detected on an ABI Prism 7000 detection system in a two-step protocol with SYBR Green (Applied Biosystems, Foster City, CA, USA). Each reaction was contained in a volume of 1 μL cDNA, 0.4 μL of each forward and reverse primer, 0.2 μL ROX reference dye (50×), 5 μL SYBR Premix Ex Taq TM (2×), and 3 μL PCR-grade water. The PCR conditions were the initial denaturation at 95 °C for 30 s, followed by 40 cycles of denaturation at 95 °C for 10 s, then annealing at 60 °C for 25 s, and a 72 °C extension step for 5 min. A melting curve analysis was performed following each quantitative real-time PCR determination to verify the specificity of the reactions. The housekeeping gene β-actin was chosen as the reference gene to normalize the mRNA expression of target genes. Gene expression data of replicate samples were computed by the 2
−ΔΔCT method [
22]. The relative level of the target genes in the CON group was treated as to be 1.0. Each sample was determined in triplicate.
2.9. Statistical Analysis
The effect of dietary treatments on these parameters was analyzed by one-way analysis of variance (ANOVA) using SAS 9.4 (SAS Institute, Inc.; Cary, NC, USA) and Tukey’s tests were used to analyze these experimental data. For data on growth performance and nutrient digestibility, the pen was defined as an experimental unit for the trial. For other indicators, each broiler was regarded as the statistical unit. The results were presented as means and standard error of the mean (SEM). Statistical significance was considered significant as p < 0.05, and trends were considered at 0.05 ≤ p < 0.10.
4. Discussion
DF has been explored as a nutritional strategy to reduce the incidence of poultry GIT-related problems [
11]. Indeed, feeding a moderate level of fiber in diets has been reported to improve nutrient digestibility and growth performance due to its role in the development of the GIT and to modify the characteristics of the intestinal contents [
23]. Of note, previous studies indicate that supplementation of either soluble or insoluble fiber in the diets is beneficial to the health of poultry [
13]. Notably, the information about the appropriate DF combination for broilers is poorly understood. As we know, inulin and cellulose are the typical soluble and insoluble fibers, respectively. Therefore, the current study was conducted to reveal the effects of different combinations of inulin and cellulose on the growth performance, nutrient digestibility, and intestinal function, and to establish an appropriate DF combination for broilers. In the present work, we obtained that the F/G of broilers in the MIX1 group was the lowest among all groups during days 1–21, days 22–42, and days 1–42. As F/G was the most important indicator for evaluating the growth of broilers, and considering F/G, we assessed that the diet of inulin/cellulose (1.5%:0.5%) was the best combination. Similarly, previous work indicated that 0.75% soluble fiber +0.25% insoluble fiber-fed piglets had a lower F/G in the whole period [
24]. It is suggested that soluble fiber might be more preferable than insoluble fiber to promote the growth performance in broilers. Indeed, we observed that the BW of broilers in the INU group (inulin/cellulose 2.0%:0.0%) was the highest at 21 days of age and significantly higher than that in the MIX2 group (inulin/cellulose 1.0%:1.0%). Interestingly, Sadeghi et al. (2015) reported that supplementing soluble and insoluble fiber in an equal (1.5%:1.5%) ratio impaired growth performance in broilers [
2]. In corroboration, we found that the ADG and F/G declined with the MIX2 diet for broilers. Meanwhile, diets containing a pectin/cellulose ratio 2%:1% decreased growth performance at 14 days of age in broilers [
25]. This is likely a result of the solubility and fermentative ability of soluble and insoluble fibers. Moreover, the sources, types, and levels of addition of soluble and insoluble fibers may also be the reasons for the differences in the above results. Hence, further research on the appropriate DF combinations for broilers is warranted.
Digestibility is a critical parameter reflecting the degree of nutrient digestion and the growth performance of animals. Improving nutrient digestibility is beneficial for increasing production efficiency. Previous studies observed that compared to the basal diet, the diet with a fiber source could promote the nutrient digestibility in broilers [
26,
27]. The current study is consistent with the results of those reports; the addition of 2% fiber in the basal diet could increase nutrient digestibility in broilers. In addition, diets containing MIX1 (inulin/cellulose 1.5%:0.5%) increased DM, Ash, and EE digestibility at day 21 and enhanced Ash and CP digestibility at day 42 in broilers. This result corroborates the growth performance of the MIX1 group broilers in the current experiment. Noteworthy, the soluble fiber may increase intestinal viscosity and reduce the rate of feed passage, which in turn decreases the nutrient digestibility and has an influence on the growth performance of poultry [
28]. A moderate value of insoluble fiber in poultry diets may increase chyme retention time in the GIT, stimulating endogenous enzyme production, improving the digestibility of starch and lipids [
11]. Nevertheless, the EE digestibility of the MIX2 group was not higher than the MIX1 group. The reason may be affected by the interaction between soluble and insoluble fibers. Moreover, fiber can substantially influence hindgut fermentation, which may confound total tract estimates, especially for crude protein. In the future, the apparent nutrient digestibility should be directly measured using ileal digesta collected from the broilers, so as to avoid the influence of cecal microbiota.
The development of the GIT could reflect the digestive function of the body. Adding fiber ingredients, especially insoluble fiber, could modulate the size of the small intestine and cecum [
29]. However, we found that the relative length of the small intestine in the MIX1 group at days 21 and 42 was no different from the other groups. The exogenous fiber added in this experiment was 2%, which is below the levels reported in other studies [
1,
30], and this may be the reason for the insignificant GIT development. Notably, the jejunum and ileum pH of broilers in the MIX1 group at 21 days of age was significantly lower than that in the CEL and MIX3 groups. This result agrees well with previous research reported that both soluble and insoluble DF supplementation resulted in a decrease in intestinal pH of broilers [
31,
32]. In addition, compared with the CON broilers, the MIX1 group significantly increased the activity of lactase in the jejunum of broilers at 21 and 42 days of age. The greater activity of digestive enzymes is vital for nutrient absorption and body growth [
33]. On the other hand, the mRNA expressions of SGLT1, GLUT2, and PepT1 in the jejunum of the MIX1 group were upregulated compared to other treatments. Peptide transport (PepT1), which is H+-dependent, is one of the routes of amino acid assimilation via the enterocyte [
34]. Increasing the expression of Na+/glucose co-transporter 1 (SGLT1) and glucose transporter 2 (GLUT2) in the jejunum suggests this could improve nutrient absorption in animals (Zhang et al., 2016 [
35]). These indicated that the MIX1 (inulin/cellulose 1.5%:0.5%) diet may improve the intestinal digestive and absorptive function of broilers.
Increasing the villus height in the intestine suggested an improvement of surface area capable of greater absorption of nutrients [
36]. The function of intestinal crypts is to secrete digestive juices; crypt depth became shallow, indicating that the maturation rate of cells and the secretion function increased [
37]. DF addition has been reported to be beneficial to the intestinal function of poultry [
1]. Studies have shown that supplementing with soybean hulls could significantly decrease the crypt depth and increase the villus height of the duodenum, jejunum and ileum in broilers [
29,
38]. Similar to the above results, in the present study, the crypt depth of the jejunum of broilers in the MIX1 group was significantly lower than that in the CON, AB, MIX2, and MIX3 groups. However, no difference in intestinal villus height was observed using higher, equal, or lower ratios of soluble to insoluble fibers, which is in agreement with a previous report [
25]. GLP-2 plays an important role in enhancing protein synthesis and villus height of the small intestine, increasing nutrient digestion and absorption, and improving intestinal development [
39]. The result of the current study showed that the mRNA expression level of GLP-2 in the MIX1 group was higher than that in the CEL group. The above results were consistent with the greater nutrient digestibility of broilers in the MIX1group. The tight junction proteins (ZO1) maintain the intestinal barrier function by efficiently preventing the diffusion of antigens and other bacteria through the epithelium [
40]. We have found that mRNA expression of ZO1 in the jejunum of the MIX1 group at 21 and 42 days of age was markedly higher than that of the AB and MIX2 groups, indicating that the MIX1 diet may be beneficial for intestinal barrier function. The increase in ZO-1 mRNA level might be caused by the content of soluble fiber, since the ratio of inulin/cellulose in the MIX1 diet was higher than that in the MIX2 diet. Indeed, the expression of ZO-1 mRNA in the INU group was both higher than that in the MIX2, MIX3, and CEL groups at days 21 and 42. In contrast, the soluble fibers also tend to result in viscous conditions in the digestive tract, which may adversely affect intestinal health [
13]. More research needs to examine the effect of different combinations of soluble and insoluble fibers on intestinal function in broilers. The anti-inflammatory cytokines (transforming growth factor TGF-β and IL-10) and pro-inflammatory cytokines (TNF-α, IL-1β, and IL-6) expressed via enterocytes are the constitutive components of the host innate immune response toward the environment [
41]. In the present study, we found that the expression of IL-6 mRNA in the jejunum of broilers at 21 days of age in the MIX1 group was significantly reduced compared to the CON group. Meanwhile, at 42 days of age, the content of TNF-α in the jejunum of broilers in the MIX1 group was significantly lower than that in the other treatments. It suggests that the MIX1 diet might promote the intestinal immune function of broilers. However, Sadeghi et al. (2015) observed that sugar beet pulp and rice hull inclusion in an equal combination (1.5%:1.5%) improved the immunity of broilers [
2]. It may be related to the different types of fiber that differ in solubility, structure, viscosity, bulking capacity, water holding capacity, and other physicochemical properties. Thus, the interaction between soluble and insoluble fiber in the diet requires further investigation. The abnormal activity of SOD is an important marker of oxidative stress [
42], as SOD has been regarded as the first line of prevention of the deleterious effects of oxyradicals on the cell [
43]. In our study, compared with the MIX3 and CEL groups, the MIX1 group significantly increased the T-SOD activity in the jejunum of broilers at 42 days of age. Hence, it may indicate a protective effect of the MIX1 diet on oxidative stress in broilers.