Improvement in glucose tolerance and insulin sensitivity by probiotic strains of Indian gut origin in high-fat diet-fed C57BL/6J mice

被引:194
作者
Balakumar, Mahalingam [1 ,2 ]
Prabhu, Durai [1 ,2 ]
Sathishkumar, Chandrakumar [1 ,2 ]
Prabu, Paramasivam [1 ,2 ]
Rokana, Namita [3 ]
Kumar, Ramesh [1 ,2 ]
Raghavan, Srividhya [1 ,2 ]
Soundarajan, Avinash [1 ,2 ]
Grover, Sunita [3 ]
Batish, Virender Kumar [3 ]
Mohan, Viswanathan [1 ,2 ]
Balasubramanyam, Muthuswamy [1 ,2 ]
机构
[1] Madras Diabet Res Fdn, Dept Cell & Mol Biol, Dr Rema Mohan High Throughput Screening HTS Lab, 4 Conran Smith Rd, Madras 600086, Tamil Nadu, India
[2] Dr Mohans Diabet Specialties Ctr, 4 Conran Smith Rd, Madras 600086, Tamil Nadu, India
[3] NDRI, Karnal 132001, Haryana, India
关键词
Type; 2; diabetes; Insulin resistance; Probiotics; High-fat diet; Tight junction protein; LPS; Lactobacillus plantarum MTCC 5690; Lactobacillus fermentum MTCC 5689; LGG; LACTOBACILLUS-PLANTARUM LP91; INDUCED OBESITY; ER STRESS; CELL FUNCTION; LIPID LEVELS; FED RATS; MICROBIOTA; RESISTANCE; CASEI; PREBIOTICS;
D O I
10.1007/s00394-016-1317-7
中图分类号
R15 [营养卫生、食品卫生]; TS201 [基础科学];
学科分类号
100403 [营养与食品卫生学];
摘要
Purpose Diabetes and obesity are characterized by glucose intolerance, fat deposition, inflammation, and dyslipidemia. Recent reports postulated that distinct gut microbiota alterations were observed in obese/diabetic subjects and modulating gut microbiota beneficially through specific probiotics could be a potential therapeutic option for type 2 diabetes/obesity. Therefore, we attempted to study the efficacy of probiotics of Indian gut origin (Lactobacillus plantarum MTCC5690 and Lactobacillus fermentum MTCC5689) along with a positive control, Lactobacillus rhamnosus (LGG) on glucose/lipid homeostasis in high-fat-diet-induced diabetic animal model. Methods C57BL/6J male mice were divided into seven groups (n = 6 per group) comprising feeding on: (1) Normal Pellet Diet (NPD), (2) High-Fat Diet (HFD), (3) HFD with LGG, (4) HFD with MTCC5690, (5) HFD with MTCC5689, (6) HFD with metformin, and 7) HFD with vildagliptin for a period of 6 months. Biochemical markers, glucose tolerance, insulin resistance, and GLP-1 and LPS levels were assessed by standard protocols. Gut integrity was measured by intestinal permeability test. Transcriptional levels of tight junction proteins (TJPs) were probed in small intestinal tissues while inflammatory signals and other pathway specific genes were profiled in liver, visceral adipose tissue, and skeletal muscle. Results Mice fed with HFD became insulin resistant, glucose intolerant, hyperglycemic, and dyslipidemic. Diabetic mice were characterized to exhibit decreased levels of GLP-1, increased gut permeability, increased circulatory levels of LPS, decrease in the gene expression patterns of intestinal tight junction markers (occludin and ZO-1), and increased proinflammatory gene markers (TNF alpha and IL6) in visceral fat along with decreased mRNA expression of FIAF and adiponectin. Diabetic mice also exhibited increased mRNA expression of ER stress markers in skeletal muscle. In addition, liver from HFD-fed diabetic mice showed increased gene expressions of proinflammation, lipogenesis, and gluconeogenesis. Probiotic interventions (most prominently the MTCC5689) resisted insulin resistance and development of diabetes in mice under HFD feeding and beneficially modulated all the biochemical and molecular alterations in a mechanistic way in several tissues. The metabolic benefits offered by the probiotics were also more or less similar to that of standard drugs such as metformin and vildagliptin. Conclusion Native probiotic strains MTCC 5690 and MTCC 5689 appear to have potential against insulin resistance and type 2 diabetes with mechanistic, multiple tissue-specific mode of actions.
引用
收藏
页码:279 / 295
页数:17
相关论文
共 58 条
[1]
Intestinal mucosal adherence and translocation of commensal bacteria at the early onset of type 2 diabetes: molecular mechanisms and probiotic treatment [J].
Amar, Jacques ;
Chabo, Chantal ;
Waget, Aurelie ;
Klopp, Pascale ;
Vachoux, Christelle ;
Bermudez-Humaran, Luis G. ;
Smirnova, Natalia ;
Berge, Mathieu ;
Sulpice, Thierry ;
Lahtinen, Sampo ;
Ouwehand, Arthur ;
Langella, Philippe ;
Rautonen, Nina ;
Sansonetti, Philippe J. ;
Burcelin, Remy .
EMBO MOLECULAR MEDICINE, 2011, 3 (09) :559-572
[2]
Prevalence of diabetes and prediabetes (impaired fasting glucose and/or impaired glucose tolerance) in urban and rural India: Phase I results of the Indian Council of Medical Research-INdia DIABetes (ICMR-INDIAB) study [J].
Anjana, R. M. ;
Pradeepa, R. ;
Deepa, M. ;
Datta, M. ;
Sudha, V. ;
Unnikrishnan, R. ;
Bhansali, A. ;
Joshi, S. R. ;
Joshi, P. P. ;
Yajnik, C. S. ;
Dhandhania, V. K. ;
Nath, L. M. ;
Das, A. K. ;
Rao, P. V. ;
Madhu, S. V. ;
Shukla, D. K. ;
Kaur, T. ;
Priya, M. ;
Nirmal, E. ;
Parvathi, S. J. ;
Subhashini, S. ;
Subashini, R. ;
Ali, M. K. ;
Mohan, V. .
DIABETOLOGIA, 2011, 54 (12) :3022-3027
[3]
Decreased Fat Storage by Lactobacillus Paracasei Is Associated with Increased Levels of Angiopoietin-Like 4 Protein (ANGPTL4) [J].
Aronsson, Linda ;
Huang, Ying ;
Parini, Paolo ;
Korach-Andre, Marion ;
Hakansson, Janet ;
Gustafsson, Jan-Ake ;
Pettersson, Sven ;
Arulampalam, Velmurugesan ;
Rafter, Joseph .
PLOS ONE, 2010, 5 (09) :1-7
[4]
Mechanisms underlying the resistance to diet-induced obesity in germ-free mice [J].
Backhed, Fredrik ;
Manchester, Jill K. ;
Semenkovich, Clay F. ;
Gordon, Jeffrey I. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (03) :979-984
[5]
Impaired miR-146a expression links subclinical inflammation and insulin resistance in Type 2 diabetes [J].
Balasubramanyam, M. ;
Aravind, S. ;
Gokulakrishnan, K. ;
Prabu, P. ;
Sathishkumar, C. ;
Ranjani, H. ;
Mohan, V. .
MOLECULAR AND CELLULAR BIOCHEMISTRY, 2011, 351 (1-2) :197-205
[6]
Crosstalk between intestinal microbiota, adipose tissue and skeletal muscle as an early event in systemic low-grade inflammation and the development of obesity and diabetes [J].
Bleau, Christian ;
Karelis, Antony D. ;
St-Pierre, David H. ;
Lamontagne, Lucie .
DIABETES-METABOLISM RESEARCH AND REVIEWS, 2015, 31 (06) :545-561
[7]
Changes in gut microbiota control metabolic endotoxemia-induced inflammation in high-fat diet-induced obesity and diabetes in mice [J].
Cani, Patrice D. ;
Bibiloni, Rodrigo ;
Knauf, Claude ;
Neyrinck, Audrey M. ;
Neyrinck, Audrey M. ;
Delzenne, Nathalle M. ;
Burcelin, Remy .
DIABETES, 2008, 57 (06) :1470-1481
[8]
Metabolic endotoxemia initiates obesity and insulin resistance [J].
Cani, Patrice D. ;
Amar, Jacques ;
Iglesias, Miguel Angel ;
Poggi, Marjorie ;
Knauf, Claude ;
Bastelica, Delphine ;
Neyrinck, Audrey M. ;
Fava, Francesca ;
Tuohy, Kieran M. ;
Chabo, Chantal ;
Waget, Aurelie ;
Delmee, Evelyne ;
Cousin, Beatrice ;
Sulpice, Thierry ;
Chamontin, Bernard ;
Ferrieres, Jean ;
Tanti, Jean-Francois ;
Gibson, Glenn R. ;
Casteilla, Louis ;
Delzenne, Nathalie M. ;
Alessi, Marie Christine ;
Burcelin, Remy .
DIABETES, 2007, 56 (07) :1761-1772
[9]
Gut microbiota fermentation of prebiotics increases satietogenic and incretin gut peptide production with consequences for appetite sensation and glucose response after a meal [J].
Cani, Patrice D. ;
Lecourt, Elodie ;
Dewulf, Evelyne M. ;
Sohet, Florence M. ;
Pachikian, Barbara D. ;
Naslain, Damien ;
De Backer, Fabienne ;
Neyrinck, Audrey M. ;
Delzenne, Nathalie M. .
AMERICAN JOURNAL OF CLINICAL NUTRITION, 2009, 90 (05) :1236-1243
[10]
Relative expression of bacterial and host specific genes associated with probiotic survival and viability in the mice gut fed with Lactobacillus plantarum Lp91 [J].
Chandran, Archana ;
Duary, Raj Kumar ;
Grover, Sunita ;
Batish, Virender Kumar .
MICROBIOLOGICAL RESEARCH, 2013, 168 (09) :555-562