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Biology subjects

Keskin, I.

Publications and source records attributed to Keskin, I..

2 recordsLinked to original sources

The molecular pathogenesis of superoxide dismutase 1-linked ALS is promoted by low oxygen tension

Mutations that destabilize superoxide dismutase 1 (SOD1) are a cause of amyotrophic lateral sclerosis (ALS). SOD1, which is located in the reducing cytosol, contains an oxidized disulfide bond required for stability. We show that the bond is an Achilles heel of the protein because it is sensitive to the oxygen tension. Culture of ALS patient-derived fibroblasts, astrocytes and induced pluripotent stem cell-derived mixed motor neuron and astrocyte cultures (MNACs) under lowered oxygen tensions caused reductive bond cleavage and misfolding. The effects were greatest in cells expressing mutant SOD1s, but also occurred in wild type SOD1 in cultures derived from patients carrying ALS-linked mutations in C9orf72, FUS and TBK1, as well as from controls. MNACs showed a greater response than the other cell types, including enhanced SOD1 aggregation, in line with the vulnerability of the motor system. Our results show that oxygen tension is a principal determinant of SOD1 stability and shed light on how risk factors for ALS, such as aging and other conditions causing reduced vascular perfusion, could lead to disease initiation and progression.\n\nSubject categories Neuroscience; Molecular Biology of Disease

neuroscience

Experimentally Induced Metamorphosis in Axolotl (Ambystoma mexicanum) Under Constant Diet Restructures Microbiota Accompanied by Reduced Limb Regenerative Capacity

Axolotl (Ambystoma mexicanum) is a critically endangered salamander species and a model organism for regenerative and developmental biology. Despite life-long neoteny in nature and in captive-bred colonies, metamorphosis of these animals can be experimentally induced by administering Thyroid hormones (THs). However, biological consequences of this experimental procedure, such as host microbiota response and implications for regenerative capacity, remain largely unknown. Here, we systematically compared host bacterial microbiota associated with skin, stomach, gut tissues and fecal samples based on 16S rRNA gene sequences, along with limb regenerative capacity, between neotenic and metamorphic Axolotls. Our results show that distinct bacterial communities inhabit individual organs of Axolotl and undergo substantial restructuring through metamorphosis. Drastic restructuring was observed for skin microbiota, highlighted by a major transition from Firmicutes-enriched to Proteobacteria-enriched relative abundance and precipitously decreased diversity. Remarkably, shifts in microbiota was accompanied by a steep reduction in limb regenerative capacity. Fecal microbiota of neotenic and metamorphic Axolotl shared relatively higher similarity, suggesting that diet continues to shape microbiota despite fundamental transformations in the host digestive organs. The results provide novel insights into microbiological and regenerative aspects of Axolotl metamorphosis and will establish a baseline for future in-depth studies.

microbiology