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Autor:
Mancera-Soto, Erica M., Chamorro-Acosta, Mónica L., Ramos-Caballero, Diana M., Torrella, Joan R., Cristancho-Mejía, Edgar
Publikováno v:
In Journal of Exercise Science & Fitness October 2022 20(4):391-399
Publikováno v:
Boletín de la Sociedad Geológica Mexicana, 2021 Jan 01. 73(2), 1-25.
Externí odkaz:
https://www.jstor.org/stable/27221756
Autor:
Caballero, Diana1, Vallejo, Camilo2,3 cvallejo@cancer.gov.co, Osma, Handerson R.2,3, Brugés, Ricardo2,3, Garcia, Harold4, Carvajal Fierro, Carlos Andrés5, Bonilla, Carlos E.2,3
Publikováno v:
American Journal of Case Reports. 8/8/2021, Vol. 22, p1-6. 6p.
Publikováno v:
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Repositorio EdocUR-U. Rosario
Universidad del Rosario
instacron:Universidad del Rosario
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Repositorio EdocUR-U. Rosario
Universidad del Rosario
instacron:Universidad del Rosario
Objetivo: Describir la contribución de las características de la clase de educación física en el mejoramiento de las funciones cognitivas de memoria y atención en escolares de 6 - 14 años. Metodología: Revisión de la literatura científica ac
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::707f250169c3a327b71a7c4d6af9f66f
https://repository.urosario.edu.co/handle/10336/33572
https://repository.urosario.edu.co/handle/10336/33572
Publikováno v:
Lengua y Sociedad; Vol. 21 No. 1 (2022); 149-162
Lengua y Sociedad; Vol. 21 Núm. 1 (2022); 149-162
Lengua y Sociedad; Vol. 21 Núm. 1 (2022); 149-162
In this paper, a case study of nominalization in the poem "La palabra de los muertos o Ayacucho hora nona" by Marcial Molina Richter (1991) is carried out. The aim of this study is to provide a model for the study of the function of deverbal words of
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Autor:
Guadalupe Avendaño-Caballero, Diana, Guillermo Jiménez-Quero, Víctor, Ortiz-Guzmán, Margarito
Publikováno v:
Congreso Internacional de Investigacion Academia Journals; 2023, Vol. 15, p1-6, 6p
Publikováno v:
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Wu F, Guo X, Zhang J, Zhang M, Ou Z, Peng Y. Phascolarctobacterium faecium abundant colonization in human gastrointestinal tract. Exp Ther Med. 2017 Oct;14(4):3122–6.
Naderpoor N, Mousa A, Gomez-Arango LF, Barrett HL, Dekker Nitert M, de Courten B. Faecal Microbiota Are Related to Insulin Sensitivity and Secretion in Overweight or Obese Adults. J Clin Med. 2019 Apr 4;8(4).
Mbakwa CA, Penders J, Savelkoul PH, Thijs C, Dagnelie PC, Mommers M, Arts ICW. Gut colonization with methanobrevibacter smithii is associated with childhood weight development. Obes Silver Spring Md. 2015 Dec;23(12):2508–16.
Ghavami SB, Rostami E, Sephay AA, Shahrokh S, Balaii H, Aghdaei HA, Zali MR. Alterations of the human gut Methanobrevibacter smithii as a biomarker for inflammatory bowel diseases. Microb Pathog. 2018 Apr;117:285–9.
Nishijima S, Suda W, Oshima K, Kim S-W, Hirose Y, Morita H, Hattori M. The gut microbiome of healthy Japanese and its microbial and functional uniqueness. DNA Res Int J Rapid Publ Rep Genes Genomes. 2016 Apr;23(2):125–33.
Chaudhary PP, Conway PL, Schlundt J. Methanogens in humans: potentially beneficial or harmful for health. Appl Microbiol Biotechnol. 2018 Apr 1;102(7):3095–104.
Morrison DJ, Preston T. Formation of short chain fatty acids by the gut microbiota and their impact on human metabolism. Gut Microbes. 2016 03;7(3):189–200.
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Morita E, Yokoyama H, Imai D, Takeda R, Ota A, Kawai E, Hisada T, Emoto M, Suzuki Y, Okazaki K. Aerobic Exercise Training with Brisk Walking Increases Intestinal Bacteroides in Healthy Elderly Women. Nutrients. 2019 Apr;11(4):868.
Taniguchi H, Tanisawa K, Sun X, Kubo T, Hoshino Y, Hosokawa M, Takeyama H, Higuchi M. Effects of short-term endurance exercise on gut microbiota in elderly men. Physiol Rep. 2018 Dec;6(23):e13935.
Kern T, Blond MB, Hansen TH, Rosenkilde M, Quist JS, Gram AS, Ekstrøm CT, Hansen T, Stallknecht B. Structured exercise alters the gut microbiota in humans with overweight and obesity—A randomized controlled trial. Int J Obes. 2020 Jan;44(1):125–35.
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Hawley JA. Adaptations Of Skeletal Muscle To Prolonged, Intense Endurance Training. Clin Exp Pharmacol Physiol. 2002;29(3):218–22.
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Hampton-Marcell JT, Eshoo TW, Cook MD, Gilbert JA, Horswill CA, Poretsky R. Comparative Analysis of Gut Microbiota Following Changes in Training Volume Among Swimmers. Int J Sports Med. 2020 May;41(5):292–9.
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Tang R, Harasymowicz NS, Wu C-L, Collins KH, Choi Y-R, Oswald SJ, Guilak F. Gene therapy for follistatin mitigates systemic metabolic inflammation and post-traumatic arthritis in high-fat diet–induced obesity. Sci Adv. 2020 May 1;6(19):eaaz7492.
Clark A, Mach N. The Crosstalk between the Gut Microbiota and Mitochondria during Exercise. Front Physiol. 2017;8:319.
Zinöcker MK, Lindseth IA. The Western Diet–Microbiome-Host Interaction and Its Role in Metabolic Disease. Nutrients [Internet]. 2018 Mar 17 [cited 2020 Apr 21];10(3). Available from: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5872783/
Rakoff-Nahoum S, Foster KR, Comstock LE. The evolution of cooperation within the gut microbiota. Nature. 2016 May;533(7602):255–9.
Hajishengallis G, Lamont RJ. Dancing with the Stars: How Choreographed Bacterial Interactions Dictate Nososymbiocity and Give Rise to Keystone Pathogens, Accessory Pathogens, and Pathobionts. Trends Microbiol. 2016 Jun 1;24(6):477–89.
Repositorio EdocUR-U. Rosario
Universidad del Rosario
instacron:Universidad del Rosario
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Wu F, Guo X, Zhang J, Zhang M, Ou Z, Peng Y. Phascolarctobacterium faecium abundant colonization in human gastrointestinal tract. Exp Ther Med. 2017 Oct;14(4):3122–6.
Naderpoor N, Mousa A, Gomez-Arango LF, Barrett HL, Dekker Nitert M, de Courten B. Faecal Microbiota Are Related to Insulin Sensitivity and Secretion in Overweight or Obese Adults. J Clin Med. 2019 Apr 4;8(4).
Mbakwa CA, Penders J, Savelkoul PH, Thijs C, Dagnelie PC, Mommers M, Arts ICW. Gut colonization with methanobrevibacter smithii is associated with childhood weight development. Obes Silver Spring Md. 2015 Dec;23(12):2508–16.
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Nishijima S, Suda W, Oshima K, Kim S-W, Hirose Y, Morita H, Hattori M. The gut microbiome of healthy Japanese and its microbial and functional uniqueness. DNA Res Int J Rapid Publ Rep Genes Genomes. 2016 Apr;23(2):125–33.
Chaudhary PP, Conway PL, Schlundt J. Methanogens in humans: potentially beneficial or harmful for health. Appl Microbiol Biotechnol. 2018 Apr 1;102(7):3095–104.
Morrison DJ, Preston T. Formation of short chain fatty acids by the gut microbiota and their impact on human metabolism. Gut Microbes. 2016 03;7(3):189–200.
Castro-Mejía JL, Khakimov B, Krych Ł, Bülow J, Bechshøft RL, Højfeldt G, Mertz KH, Garne ES, Schacht SR, Ahmad HF, Kot W, Hansen LH, Perez-Cueto FJA, Lind MV, Lassen AJ, Tetens I, Jensen T, Reitelseder S, Jespersen AP, Holm L, Engelsen SB, Nielsen DS. Physical fitness in community dwelling older adults is linked to dietary intake, gut microbiota and metabolomic signatures. bioRxiv. 2019 Oct 8;793612.
Munukka E, Ahtiainen JP, Puigbó P, Jalkanen S, Pahkala K, Keskitalo A, Kujala UM, Pietilä S, Hollmén M, Elo L, Huovinen P, D’Auria G, Pekkala S. Six-Week Endurance Exercise Alters Gut Metagenome That Is not Reflected in Systemic Metabolism in Over-weight Women. Front Microbiol [Internet]. 2018 Oct 3 [cited 2019 Oct 15];9. Available from: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6178902/
Morita E, Yokoyama H, Imai D, Takeda R, Ota A, Kawai E, Hisada T, Emoto M, Suzuki Y, Okazaki K. Aerobic Exercise Training with Brisk Walking Increases Intestinal Bacteroides in Healthy Elderly Women. Nutrients. 2019 Apr;11(4):868.
Taniguchi H, Tanisawa K, Sun X, Kubo T, Hoshino Y, Hosokawa M, Takeyama H, Higuchi M. Effects of short-term endurance exercise on gut microbiota in elderly men. Physiol Rep. 2018 Dec;6(23):e13935.
Kern T, Blond MB, Hansen TH, Rosenkilde M, Quist JS, Gram AS, Ekstrøm CT, Hansen T, Stallknecht B. Structured exercise alters the gut microbiota in humans with overweight and obesity—A randomized controlled trial. Int J Obes. 2020 Jan;44(1):125–35.
Biolo G, Ciocchi B, Stulle M, Piccoli A, Lorenzon S, Dal Mas V, Barazzoni R, Zanetti M, Guarnieri G. Metabolic consequences of physical inactivity. J Ren Nutr Off J Counc Ren Nutr Natl Kidney Found. 2005 Jan;15(1):49–53
Hawley JA. Adaptations Of Skeletal Muscle To Prolonged, Intense Endurance Training. Clin Exp Pharmacol Physiol. 2002;29(3):218–22.
Zhao X, Zhang Z, Hu B, Huang W, Yuan C, Zou L. Response of Gut Microbiota to Metabolite Changes Induced by Endurance Exercise. Front Microbiol. 2018;9:765.
Rivera-Brown AM, Frontera WR. Principles of exercise physiology: responses to acute exercise and long-term adaptations to training. PM R. 2012 Nov;4(11):797–804.
Hampton-Marcell JT, Eshoo TW, Cook MD, Gilbert JA, Horswill CA, Poretsky R. Comparative Analysis of Gut Microbiota Following Changes in Training Volume Among Swimmers. Int J Sports Med. 2020 May;41(5):292–9.
Cronin O, Barton W, Skuse P, Penney NC, Garcia-Perez I, Murphy EF, Woods T, Nugent H, Fanning A, Melgar S, Falvey EC, Holmes E, Cotter PD, O’Sullivan O, Molloy MG, Shanahan F. A Prospective Metagenomic and Metabolomic Analysis of the Impact of Exercise and/or Whey Protein Supplementation on the Gut Microbiome of Sedentary Adults. mSystems. 2018 Jun;3(3).
Tang R, Harasymowicz NS, Wu C-L, Collins KH, Choi Y-R, Oswald SJ, Guilak F. Gene therapy for follistatin mitigates systemic metabolic inflammation and post-traumatic arthritis in high-fat diet–induced obesity. Sci Adv. 2020 May 1;6(19):eaaz7492.
Clark A, Mach N. The Crosstalk between the Gut Microbiota and Mitochondria during Exercise. Front Physiol. 2017;8:319.
Zinöcker MK, Lindseth IA. The Western Diet–Microbiome-Host Interaction and Its Role in Metabolic Disease. Nutrients [Internet]. 2018 Mar 17 [cited 2020 Apr 21];10(3). Available from: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5872783/
Rakoff-Nahoum S, Foster KR, Comstock LE. The evolution of cooperation within the gut microbiota. Nature. 2016 May;533(7602):255–9.
Hajishengallis G, Lamont RJ. Dancing with the Stars: How Choreographed Bacterial Interactions Dictate Nososymbiocity and Give Rise to Keystone Pathogens, Accessory Pathogens, and Pathobionts. Trends Microbiol. 2016 Jun 1;24(6):477–89.
Repositorio EdocUR-U. Rosario
Universidad del Rosario
instacron:Universidad del Rosario
La revisión actual tuvo como objetivo dilucidar los efectos moduladores de la actividad física y las actividades deportivas en el microbioma gastrointestinal. Se analizaron veinte estudios transversales y longitudinales, utilizando medidas metagen
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::3646e9eb00bedbbbcc8ed25367c41251
https://repository.urosario.edu.co/handle/10336/26549
https://repository.urosario.edu.co/handle/10336/26549