Responses of Cardiac Tissue to Simulated Weightlessness
Candice Ginn T. Tahimic, Sonette Steczina, Masahiro Terada, Yasaman Shirazi‐Fard, Ann‐Sofie Schreurs, David A. Goukassian, Ruth K. Globus
Abstract
Candice Ginn T. Tahimic, Sonette Steczina, Masahiro Terada, Yasaman Shirazi‐Fard, Ann‐Sofie Schreurs, David A. Goukassian, Ruth K. Globus
Abstract
Our current study aims to determine the molecular mechanisms that underlie these cardiac changes in response to spaceflight. The central hypothesis of our study is that long duration simulated weightlessness and subsequent recovery causes select and persistent changes in gene expression and oxidative defense-related pathways. In this study, we will first conduct general analyses of three-month old male and female animals, focusing on two key long-duration time points, (i.e. after 90 days of simulated weightlessness (HU) and after 90 days recovery from 90 days of HU. Both rat-specific gene arrays and qPCR will be performed focusing on genes already implicated in oxidative stress responses and cardiac disease. Gene expression analyses will be complemented by biochemical tests of frozen tissue lysates for select markers of oxidative damage.
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Our current study aims to determine the molecular mechanisms that underlie these cardiac changes in response to spaceflight. The central hypothesis of our study is that long duration simulated weightlessness and subsequent recovery causes select and persistent changes in gene expression and oxidative defense-related pathways. In this study, we will first conduct general analyses of three-month old male and female animals, focusing on two key long-duration time points, (i.e. after 90 days of simulated weightlessness (HU) and after 90 days recovery from 90 days of HU. Both rat-specific gene arrays and qPCR will be performed focusing on genes already implicated in oxidative stress responses and cardiac disease. Gene expression analyses will be complemented by biochemical tests of frozen tissue lysates for select markers of oxidative damage.
Key concepts: Weightlessness, Spaceflight, Oxidative stress, Gene expression, Oxidative phosphorylation, Oxidative damage, Biology, Gene