Your browser doesn't support javascript.
loading
Radioprotective potential of probiotics against gastrointestinal and neuronal toxicity: a preclinical study
Venkidesh, Babu Santhi; R Shankar, Saligrama; Koravadi Narasimhamurthy, Rekha; Dattaram Mumbrekar, Kamalesh; Sadashiva Rao, Satish Bola.
Affiliation
  • Venkidesh, Babu Santhi; Manipal Academy of Higher Education. Manipal School of Life Sciences. Department of Radiation Biology & Toxicology. Manipal. India
  • R Shankar, Saligrama; Manipal Academy of Higher Education. Manipal School of Life Sciences. Department of Radiation Biology & Toxicology. Manipal. India
  • Koravadi Narasimhamurthy, Rekha; Manipal Academy of Higher Education. Manipal School of Life Sciences. Department of Radiation Biology & Toxicology. Manipal. India
  • Dattaram Mumbrekar, Kamalesh; Manipal Academy of Higher Education. Manipal School of Life Sciences. Department of Radiation Biology & Toxicology. Manipal. India
  • Sadashiva Rao, Satish Bola; Manipal Academy of Higher Education. Manipal School of Life Sciences. Manipal. India
Clin. transl. oncol. (Print) ; 25(11): 3165-3173, 11 nov. 2023. ilus, graf
Article in English | IBECS | ID: ibc-226841
Responsible library: ES1.1
Localization: ES15.1 - BNCS
ABSTRACT
Purpose Radiotherapy is a critical component of cancer treatment, along with surgery and chemotherapy. Approximately, 90% of cancer patients undergoing pelvic radiotherapy show gastrointestinal (GI) toxicity, including bloody diarrhea, and gastritis, most of which are associated with gut dysbiosis. In addition to the direct effect of radiation on the brain, pelvic irradiation can alter the gut microbiome, leading to inflammation and breakdown of the gut–blood barrier. This allows toxins and bacteria to enter the bloodstream and reach the brain. Probiotics have been proven to prevent GI toxicity by producing short-chain fatty acids and exopolysaccharides beneficial for protecting mucosal integrity and oxidative stress reduction in the intestine and also shown to be beneficial in brain health. Microbiota plays a significant role in maintaining gut and brain health, so it is important to study whether bacterial supplementation will help in maintaining the gut and brain structure after radiation exposure. Methods In the present study, male C57BL/6 mice were divided into control, radiation, probiotics, and probiotics + radiation groups. On the 7th day, animals in the radiation and probiotics + radiation groups received a single dose of 4 Gy to whole-body. Posttreatment, mice were sacrificed, and the intestine and brain tissues were excised for histological analysis to assess GI and neuronal damage. Results Radiation-induced damage to the villi height and mucosal thickness was mitigated by the probiotic treatment significantly (p < 0.01). Further, radiation-induced pyknotic cell numbers in the DG, CA2, and CA3 areas were substantially reduced with bacterial supplementation (p < 0.001). Similarly, probiotics reduced neuronal inflammation induced by radiation in the cortex, CA2, and DG region (p < 0.01) (AU)
Subject(s)


Full text: Available Collection: National databases / Spain Database: IBECS Main subject: Radiation-Protective Agents / Probiotics / Gastrointestinal Tract / Neurons Limits: Animals / Humans / Male Language: English Journal: Clin. transl. oncol. (Print) Year: 2023 Document type: Article Institution/Affiliation country: Manipal Academy of Higher Education/India

Full text: Available Collection: National databases / Spain Database: IBECS Main subject: Radiation-Protective Agents / Probiotics / Gastrointestinal Tract / Neurons Limits: Animals / Humans / Male Language: English Journal: Clin. transl. oncol. (Print) Year: 2023 Document type: Article Institution/Affiliation country: Manipal Academy of Higher Education/India
...