[1] NOFRARÍAS M, MARTÍNEZ-PUIG D, PUJOLS J, et al.Long-term intake of resistant starch improves colonic mucosal integrity and reduces gut apoptosis and blood immune cells[J].Nutrition, 2007, 23(11/12):861-870.
[2] DENG J, WU X, BIN S, et al.Dietary amylose and amylopectin ratio and resistant starch content affects plasma glucose, lactic acid, hormone levels and protein synthesis in splanchnic tissues[J].Journal of Animal Physiology and Animal Nutrition, 2010, 94(2):220-226.

[3] REGMI P R, METZLER-ZEBELI B U, GÄNZLE M G, et al.Starch with high amylose content and low in vitro digestibility increases intestinal nutrient flow and microbial fermentation and selectively promotes
Bifidobacteria in pigs[J].The Journal of Nutrition, 2011, 141(7):1273-1280.

[4] DOTI S, SUÁREZ B J, LATORRE M A, et al.Effect of dietary starch source on growth performances, digestibility and quality traits of growing pigs[J].Livestock Science, 2014, 164:119-127.
[5] KNUDSEN K E B, HEDEMANN M S, LÆRKE H N.The role of carbohydrates in intestinal health of pigs[J].Animal Feed Science and Technology, 2012, 173(1/2):41-53.
[6] BIRD A R, VUARAN M, BROWN I, et al.Two high-amylose maize starches with different amounts of resistant starch vary in their effects on fermentation, tissue and digesta mass accretion, and bacterial populations in the large bowel of pigs[J].The British Journal of Nutrition, 2007, 97(1):134-144.

[7] 张珍珍.不同直链、支链组成的淀粉对断奶仔猪脂肪代谢影响的研究[D].硕士学位论文.南昌:南昌大学, 2010. ZHANG Z Z.Dietary amylopectin-amylose starch content affects lipid metabolism in weaned pigs[D].Master's Thesis.Nanchang:Nanchang University, 2010.(in Chinese)
[8] 蒲俊宁, 王华杰, 陈代文, 等.饲粮直链/支链淀粉比对育肥猪生长性能、营养物质表观消化率、肠道食糜菌群数量与挥发性脂肪酸浓度以及肌内脂肪含量的影响[J].动物营养学报, 2018, 30(12):4874-4885. PU J N, WANG H J, CHEN D W, et al.Effects of dietary amylose/amylopectin ratio on growth performance, nutrient apparent dgestibility, intestinal microflora number and volatile fatty acid concentrations and intramuscular fat content of finishing pigs[J].Chinese Journal of Animal Nutrition, 2018, 30(12):4874-4885.(in Chinese)
[9] REN W, YAN H L, YU B, et al.
Prevotella-rich enterotype may benefit gut health in finishing pigs fed a diet with high amylose-to-amylopectin ratio[J/OL].Animal Nutrition.(2021-02-25)[2021-03-20].https://www.sciencedirect.com/science/article/pii/S2405654521000226.DOI:10.1016/j.aninu.2020.08.007.
[10] LI Y J, LI J L, ZHANG L, et al.Effects of dietary starch types on growth performance, meat quality and myofibre type of finishing pigs[J].Meat Science, 2017, 131:60-67.
[11] 谢晨, 李艳娇, 李蛟龙, 等.不同淀粉类型日粮对育肥猪消化代谢的影响[J].畜牧兽医学报, 2017, 48(12):2337-2346. XIE C, LI Y J, LI J L, et al.Effect of dietary starch types on intestinal digestion and metabolism of finishing pigs[J].Acta Veterinaria et Zootechnica Sinica, 2017, 48(12):2337-2346.(in Chinese)
[12] YU M, LI Z, RONG T, et al.Different dietary starch sources alter the carcass traits, meat quality, and the profile of muscle amino acid and fatty acid in finishing pigs[J].Journal of Animal Science and Biotechnology, 2020, 11(1):78.
[13] 余苗, 李贞明, 陈卫东, 等.不同淀粉类型饲粮对育肥猪盲肠食糜主要微生物及其代谢产物的影响[J].动物营养学报, 2020, 32(2):613-625. YU M, LI Z M, CHEN W D, et al.Effects of different starch type diets on main microbes and their metabolites in cecal digesta of finishing pigs[J].Chinese Journal of Animal Nutrition, 2020, 32(2):613-625.(in Chinese)
[14] YU M, LI Z M, CHEN W D, et al.Microbiome-metabolomics analysis investigating the impacts of dietary starch types on the composition and metabolism of colonic microbiota in finishing pigs[J].Frontiers in Microbiology, 2019, 10:1143.
[15] 余苗, 李贞明, 陈卫东, 等.黑水虻幼虫粉对育肥猪营养物质消化率、血清生化指标和氨基酸组成的影响[J].动物营养学报, 2019, 31(7):3330-3337. YU M, LI Z M, CHEN W D, et al.Effects of hermetia illucens L.larvae meal on nutrient digestibility, serum biochemical indices and amino acid composition of finishing pigs[J].Chinese Journal of Animal Nutrition, 2019, 31(7):3330-3337.(in Chinese)
[16] 中华人民共和国国家质量监督检验检疫总局, 中国国家标准化管理委员会.饲料中盐酸不溶灰分的测定:GB/T 23742-2009[S].北京:中国标准出版社, 2009. General Administration of Quality Supervision, Inspection and Quarantine of the People's Republic of China, Standardization Administration.Animal feeding stuffs-determination of ash insoluble in hydrochloric acid:GB/T 23742-2009[S].Beijing:Standards Press of China, 2009.(in Chinese)
[17] 王加启, 于建国.饲料分析与检验[M].北京:中国计量出版社, 2004. WANG J Q, YU J G.Feed analysis and inspection[M].Beijing:China Metrology Publishing House, 2004.(in Chinese)
[18] YU M, MU C L, YANG Y X, et al.Increases in circulating amino acids with in-feed antibiotics correlated with gene expression of intestinal amino acid transporters in piglets[J].Amino Acids, 2017, 49(9):1587-1599.

[19] PIEPER R, KRÖGER S, RICHTER J F, et al.Fermentable fiber ameliorates fermentable protein-induced changes in microbial ecology, but not the mucosal response, in the colon of piglets[J].The Journal of Nutrition, 2012, 142(4):661-667.

[20] COLLADO-ROMERO M, ARCE C, RAMÍREZ-BOO M, et al.Quantitative analysis of the immune response upon
Salmonella typhimurium infection along the porcine intestinal gut[J].Veterinary Research, 2010, 41(2):23.
[21] LIU Y L, CHEN F, ODLE J, et al.Fish oil enhances intestinal integrity and inhibits TLR4 and NOD2 signaling pathways in weaned pigs after LPS challenge[J].The Journal of Nutrition, 2012, 142(11):2017-2024.

[22] ZHENG R A, YANG L Y, ZHOU X L, et al.Effect of soybean oligosaccharides on immunity and TLR2-NF-κB signal pathway response for weanling pigs[J].Journal of Food Agriculture and Environment, 2012, 10(1):273-279.
[23] ZHOU X L, KONG X F, LIAN G Q, et al.Dietary supplementation with soybean oligosaccharides increases short-chain fatty acids but decreases protein-derived catabolites in the intestinal luminal content of weaned
Huanjiang mini-piglets[J].Nutrition Research, 2014, 34(9):780-788.

[24] TUDELA C V, BOUDRY C, STUMPFF F, et al.Down-regulation of monocarboxylate transporter 1(
MCT1) gene expression in the colon of piglets is linked to bacterial protein fermentation and pro-inflammatory cytokine-mediated signalling[J].The British Journal of Nutrition, 2015, 113(4):610-617.

[25] YU X L, ZHOU Z, HU D M, et al.Pathogenic pseudorabies virus, China, 2012[J].Emerging Infectious Diseases, 2014, 20(1):102-104.

[26] GAO Y, HAN F, HUANG X, et al.Changes in gut microbial populations, intestinal morphology, expression of tight junction proteins, and cytokine production between two pig breeds after challenge with
Escherichia coli K88:a comparative study[J].Journal of Animal Science, 2013, 91(12):5614-5625.

[27] JIANG J J, CHEN D W, YU B, et al.Improvement of growth performance and parameters of intestinal function in liquid fed early weanling pigs[J].Journal of Animal Science, 2019, 97(7):2725-2738.

[28] YU M, LI Z M, CHEN W D, et al.Use of hermetia illucens larvae as a dietary protein source:effects on growth performance, carcass traits, and meat quality in finishing pigs[J].Meat Science, 2019, 158:107837.
[29] YU M, LI Z M, CHEN W D, et al.
Hermetia illucens larvae as a potential dietary protein source altered the microbiota and modulated mucosal immune status in the colon of finishing pigs[J].Journal of Animal Science and Biotechnology, 2019, 10:50.
[30] YU M, LI Z M, CHEN W D, et al.Hermetia illucens larvae as a fishmeal replacement alters intestinal specific bacterial populations and immune homeostasis in weanling piglets[J].Journal of Animal Science, 2020, 98(3):skz395.
[31] 余苗, 李贞明, 王刚, 等.黑水虻幼虫粉对育肥猪盲肠食糜主要微生物数量和代谢产物的影响[J].畜牧兽医学报, 2020, 51(2):299-310. YU M, LI Z M, WANG G, et al.Effects of hermetia illucens larvae meal on the number of main microbes and metabolites in the cecal digesta of finishing pigs[J].Acta Veterinaria et Zootechnica Sinica, 2020, 51(2):299-310.(in Chinese)
[32] YU M, LI Z M, CHEN W D, et al.Dietary supplementation with citrus extract altered the intestinal microbiota and microbial metabolite profiles and enhanced the mucosal immune homeostasis in yellow-feathered broilers[J].Frontiers in Microbiology, 2019, 10:2662.
[33] 李丰隆.不同来源淀粉对育肥猪生长性能、养分消化率以及血液生化指标的影响[D].硕士学位论文.杨凌:西北农林科技大学, 2015. LI F L.The effect of starch sources on growth performance, nutrient digestibility and blood biochemical indicators in growing-finishing pigs[D].Master's Thesis.Yangling:Northwest A&F University, 2015.(in Chinese)
[34] 何锦.不同来源淀粉对育肥猪养分消化率的影响[D].硕士学位论文.杨凌:西北农林科技大学, 2015. HE J.The effect of starch sources on nutrient digestion in growing-finishing pigs[D].Master's Thesis.Yangling:Northwest A&F University, 2015.(in Chinese)
[35] WEURDING R E, ENTING H, VERSTEGEN M W A.The effect of site of starch digestion on performance of broiler chickens[J].Animal Feed Science and Technology, 2003, 110(1/4):175-184.
[36] 相振田.饲粮不同来源淀粉对断奶仔猪肠道功能和健康的影响及机理研究[D].博士学位论文.雅安:四川农业大学, 2011. XIANG Z T.Effects of different dietary starches on intestinal functions and health and the underlying mechanism in weaned piglets[D].Ph.D. Thesis.Ya'an:Sichuan Agricultural University, 2011.(in Chinese)
[37] NICHOLSON J K, HOLMES E, KINROSS J M, et al.Metabolic phenotyping in clinical and surgical environments[J].Nature, 2012, 491(7424):384-392.

[38] METGES C C, PETZKE K J, HENNIG U.Gas chromatography/combustion/isotope ratio mass spectrometric comparison of N-acetyl-and N-pivaloyl amino acid esters to measure 15N isotopic abundances in physiological samples:a pilot study on amino acid synthesis in the upper gastro-intestinal tract of minipigs[J].Journal of Mass Spectrometry, 1996, 31(4):367-376.

[39] 戴求仲.日粮淀粉来源对生长猪氨基酸消化率、门静脉净吸收量和组成模式的影响[D].博士学位论文.雅安:四川农业大学, 2004. DAI Q Z.The effect of dietary starch source on ileum digestibility, net portal absorption and pattern of amino acids in growing pigs[D].Ph.D. Thesis.Ya'an:Sichuan Agricultural University, 2004.(in Chinese)
[40] YANG C, CHEN D W, YU B, et al.Effect of dietary amylose/amylopectin ratio on growth performance, carcass traits, and meat quality in finishing pigs[J].Meat Science, 2015, 108:55-60.
[41] BIRD A R, JACKSON M, KING R A, et al.A novel high-amylose barley cultivar (
Hordeum vulgare var.
Himalaya 292) lowers plasma cholesterol and alters indices of large-bowel fermentation in pigs[J].The British Journal of Nutrition, 2004, 92(4):607-615.

[42] HE J, CHEN D W, ZHANG K Y, et al.A high-amylopectin diet caused hepatic steatosis associated with more lipogenic enzymes and increased serum insulin concentration[J].The British Journal of Nutrition, 2011, 106(10):1470-1475.

[43] 朱伟云, 余凯凡, 慕春龙, 等.猪的肠道微生物与宿主营养代谢[J].动物营养学报, 2014, 26(10):3046-3051. ZHU W Y, YU K F, MU C L, et al.Gut microbiota and host nutrition metabolism in pigs[J].Chinese Journal of Animal Nutrition, 2014, 26(10):3046-3051.(in Chinese)
[44] FOUHSE J M, GÄNZLE M G, REGMI P R, et al.High amylose starch with low
in vitro digestibility stimulates hindgut fermentation and has a bifidogenic effect in weaned pigs[J].The Journal of Nutrition, 2015, 145(11):2464-2470.

[45] WANG W, CHEN L P, ZHOU R, et al.Increased proportions of
Bifidobacterium and the
Lactobacillus group and loss of butyrate-producing bacteria in inflammatory bowel disease[J].Journal of Clinical Microbiology, 2014, 52(2):398-406.

[46] FLINT H J, BAYER E A, RINCON M T, et al.Polysaccharide utilization by gut bacteria:potential for new insights from genomic analysis[J].Nature Reviews Microbiology, 2008, 6(2):121-131.

[47] LOUIS P, HOLD G L, FLINT H J.The gut microbiota, bacterial metabolites and colorectal cancer[J].Nature Reviews Microbiology, 2014, 12(10):661-672.

[48] KAWAI T, AKIRA S.The role of pattern-recognition receptors in innate immunity:update on Toll-like receptors[J].Nature Immunology, 2010, 11(5):373-384.

[49] MU C L, YANG Y X, ZHU W Y.Crosstalk between the immune receptors and gut microbiota[J].Current Protein & Peptide Science, 2015, 16(7):622-631.

[50] SANJABI S, ZENEWICZ L A, KAMANAKA M, et al.Anti-inflammatory and pro-inflammatory roles of TGF-β, IL-10, and IL-22 in immunity and autoimmunity[J].Current Opinion in Pharmacology, 2009, 9(4):447-453.

[51] LI X L, AKHTAR S, CHOUDHRY M.Alteration in intestine tight junction protein phosphorylation and apoptosis is associated with increase in IL-18 levels following alcohol intoxication and burn injury[J].Biochimica et Biophysica Acta, 2012, 1822(2):196-203.

[52] HERFEL T M, JACOBI S K, LIN X, et al.Dietary supplementation of
Bifidobacterium longum strain AH1206 increases its cecal abundance and elevates intestinal interleukin-10 expression in the neonatal piglet[J].Food and Chemical Toxicology, 2013, 60:116-122.
[53] O'FLAHERTY S, SAULNIER D M, POT B, et al.How can probiotics and prebiotics impact mucosal immunity?[J].Gut Microbes, 2010, 1(5):293-300.

[54] CROXEN M A, FINLAY B B.Molecular mechanisms of
Escherichia coli pathogenicity[J].Nature Reviews Microbiology, 2010, 8(1):26-38.

[55] GUO Z Z, WANG P, YI Z H, et al.The crosstalk between gut inflammation and gastrointestinal disorders during acute pancreatitis[J].Current Pharmaceutical Design, 2014, 20(7):1051-1062.

[56] BLACHIER F, MARIOTTI F, HUNEAU J F, et al.Effects of amino acid-derived luminal metabolites on the colonic epithelium and physiopathological consequences[J].Amino Acids, 2007, 33(4):547-562.

[57] HEIDEBRECHT H J, KULOZIK U.Fractionation of casein micelles and minor proteins by microfiltration in diafiltration mode.Study of the transmission and yield of the immunoglobulins IgG, IgA and IgM[J].International Dairy Journal, 2019, 93:1-10.
[58] BROWN E M, SADARANGANI M, FINLAY B B.The role of the immune system in governing host-microbe interactions in the intestine[J].Nature Immunology, 2013, 14(7):660-667.