Author:
Chauhan Ankit,Sah Dhananjay Kumar,Kumari Neeraj,Kalra Namita,Soni Ravi,Bhatt Anant Narayan
Abstract
AbstractExposure to Ionizing radiation (IR) poses a severe threat to human health. Therefore, there is an urgent need to develop potent and safe radioprotective agents for radio-nuclear emergencies. Phosphatidylinositol-3-kinase (PI3K) mediates its cytoprotective signaling against IR by phosphorylating membrane phospholipids to phosphatidylinositol 3,4,5 triphosphate, PIP3, that serve as a docking site for AKT. Phosphatase and Tensin Homolog on chromosome 10 (PTEN) antagonizes PI3K activity by dephosphorylating PIP3, thus suppressing PI3K/AKT signaling that could prevent IR induced cytotoxicity. The current study was undertaken to investigate the radioprotective potential of PTEN inhibitor (PTENi), bpV(HOpic). The cell cytotoxicity, proliferation index, and clonogenic survival assays were performed for assessing the radioprotective potential of bpV(HOpic). A safe dose of bpV(HOpic) was shown to be radioprotective in three radiosensitive tissue origin cells. Further, bpV(HOpic) significantly reduced the IR-induced apoptosis and associated pro-death signaling. A faster and better DNA repair kinetics was also observed in bpV(HOpic) pretreated cells exposed to IR. Additionally, bpV(HOpic) decreased the IR-induced oxidative stress and significantly enhanced the antioxidant defense mechanism in cells. The radioprotective effect of bpV(HOpic) was found to be AKT dependant and primarily regulated by the enhanced glycolysis and associated signaling. Furthermore, this in-vitro observation was verified in-vivo, where administration of bpV(HOpic) in C57BL/6 mice resulted in AKT activation and conferred survival advantage against IR-induced mortality. These results imply that bpV(HOpic) ameliorates IR-induced oxidative stress and cell death by inducing AKT signaling mediated antioxidant defense system and DNA repair pathways, thus strengthening its potential to be used as a radiation countermeasure.
Funder
Defence Research and Development Organisation
Publisher
Springer Science and Business Media LLC
Reference62 articles.
1. Reisz, J. A., Bansal, N., Qian, J., Zhao, W. & Furdui, C. M. Effects of Ionizing radiation on biological molecules—mechanisms of damage and emerging methods of detection. Antioxid. Redox Signal. 21, 260–292 (2014).
2. Hall, E. J. Radiobiology for the Radiologist (Lippincott Williams & Wilkins, Philadelphia, 1994).
3. Capizzi, R. L. The preclinical basis for broad-spectrum selective cytoprotection of normal tissues from cytotoxic therapies by amifostine (Ethyol). Eur. J. Cancer 32A(Suppl 4), S5-16 (1996).
4. Farese, A. M. et al. Efficacy of neulasta or neupogen on H-ARS and GI-ARS mortality and hematopoietic recovery in nonhuman primates after 10-Gy irradiation with 2.5% bone marrow sparing. Health Phys. 116, 339–353 (2019).
5. FDA Approves Radiation Medical Radiation Countermeasure. www.fda.gov. https://www.fda.gov/emergency-preparedness-and-response/about-mcmi/fda-approves-radiation-medical-countermeasure. Accessed 14 Sept 2019 (2019).
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