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Kucuk Baloglu, F.

Publications and source records attributed to Kucuk Baloglu, F..

2 recordsLinked to original sources

Yippee-like protein Moh1 links gene expression to metabolism and selective stress resistance in Saccharomyces cerevisiae

The Yippee-like (YPEL) proteins are a conserved eukaryotic gene family implicated in proliferation, senescence, and stress adaptation. In humans, five paralogs (YPEL1-YPEL5) are widely expressed and encode proteins with high sequence and amino acid similarity, yet the molecular basis of their functions remains poorly defined. While conservation implies possible functional redundancy, the distinct roles of each YPEL paralog have not been defined. The budding yeast S. cerevisiae possesses a single ortholog, MOH1, which contributes to survival and stress responses and can be functionally complemented by human YPELs. However, the cellular role of MOH1 remains to be elucidated. Here, we investigated the function of MOH1 in S. cerevisiae. MOH1 deletion (moh1{Delta}) conferred sensitivity to sodium azide and sulfuric acid but increased resistance to hydrogen peroxide and acetic acid. Moh1 protein levels decreased upon hydrogen peroxide treatment and increased following sulfuric acid exposure, indicating stress-dependent regulation. Light and scanning electron microscopy showed that moh1{Delta} cells are constitutively rounder, tend to form clumps, and exhibit rough surface features, indicating altered cellular architecture. RNA profiling and FTIR spectroscopy revealed transcriptional reprogramming and metabolic remodeling in moh1{Delta} cells, including alterations in lipid, protein, and cell wall polysaccharide levels and composition. Intracellular ROS assays indicated that hydrogen peroxide resistance can be attributed to decreased cellular uptake resulting from altered permeability, rather than changes in mitochondrial ROS production. Collectively, our findings identify Moh1 as a regulatory factor linking gene expression to metabolism and cellular architecture, influencing membrane permeability and conferring selective stress resistance in S. cerevisiae.

cell biology↗

Female lineages and changing kinship patterns in Neolithic Catalhöyük

Arguments have long suggested that the advent of early farming in the Near East and Anatolia was linked to a Mother Goddess cult. However, evidence for a dominant female role in these societies has been scarce. We studied social organisation, mobility patterns and gendered practices in Neolithic Southwest Asia using 131 paleogenomes from Catalhoyuk East Mound (7100-5950 BCE), a major settlement in Central Anatolia with an uninterrupted occupation and an apparent egalitarian structure. In contrast to widespread genetic evidence for patrilocality in Neolithic Europe, the Catalhoyuk individuals revealed no indication of patrilocal mobility. Analysing genetic kin ties among individuals buried in the same house (co-burials) across 35 Catalhoyuk buildings, we identified close ties concentrated within buildings and among neighbours in Catalhoyuks Early period, akin to those in the preceding Pre-Pottery Neolithic in Southwest Asia. This pattern weakened over time: by the late 7th millennium BCE, subadults buried in the same building were rarely closely genetically related, despite sharing similar diets. Still, throughout the sites occupation, genetic connections within Catalhoyuk buildings were much more frequently connected via the maternal than the paternal line. We also identified differential funerary treatment of female subadults compared to those of males, with a higher frequency of grave goods associated with females. Our results reveal how kinship practices changed while key female roles persisted over one thousand years in a large Neolithic community in western Eurasia.

genomics↗