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Venkatasubramani, A. V.

Publications and source records attributed to Venkatasubramani, A. V..

3 recordsLinked to original sources

The Tip60 acetylome is a hallmark of the proliferative state in Drosophila

The acetyltransferase KAT5/Tip60 is an epigenetic regulator of transcription and the DNA damage response. In Drosophila, Tip60 acetylates histones as part of the DOM-A complex, but it is unclear whether it has other substrates. In this work, we comprehensively studied the functions of Tip60 in a Drosophila proliferative cell model. Depletion of Tip60 arrests the cell cycle, but remaining viable cells resist mutagenic irradiation. The impaired proliferation is explained by reduced expression of critical cell cycle genes. Tip60 binds their transcription start sites and Tip60-dependent acetylation of the histone variant H2A.V correlates with transcription activity. A potentially synergistic pathway for cell cycle regulation involves the acetylation of proteins other than histones. The Tip60-dependent nuclear acetylome contains hundreds of proteins, many of which are involved in diverse aspects of cell growth and division, including replication, mitosis, gene expression, chromatin organization and ribosome biogenesis. We hypothesize that Tip60 coordinates the proliferative state through histone and non-histone effectors. Reversible acetylation of diverse effector proteins bears potential for fine-tuning energy-intensive processes in response to stresses or nutritional shortcomings. Our study portrays the DOM-A/TIP60 complex as a general promoter of cell proliferation.

molecular biology↗

Chameau (HBO1) regulates starvation in a temperature-dependent manner in Drosophila melanogaster

The body temperature of Drosophila melanogaster depends on the extrinsic temperature. Numerous studies in fruit flies have shown that environmental temperature has an effect on metabolism, lifespan and starvation resilience. We have previously shown that Chameau (Chm), a MYST-domain acetyltransferase, promotes aging but also increases starvation resilience. As starvation resilience is highly temperature dependent, we explored the effect of temperature on starvation resilience in fruit flies with reduced chm expression. Strikingly, we found that an increase of 2{degrees}C was sufficient to restore starvation resilience in chm mutants. The increase in temperature rescued the dampened expression of genes involved in insulin, hormone and starvation response as well as a reduced rate of weight loss and misregulation of trehalose, which we observed in chm mutants at 23{degrees}C. Our data show that whereas Chm has an important role in regulating starvation at 23{degrees}C and below, it becomes obsolete at higher temperatures. Our finding that a gene plays an important role only under specific environmental conditions has important implications in light of the recent global change of climate conditions.

molecular biology↗

The role of RNA in the maintenance of chromatin domains as revealed by antibody mediated proximity labelling coupled to mass spectrometry

Eukaryotic chromatin is organised in individual domains, which are defined by their location within the nuclear space, the molecular interactions within each other and their distinct proteomic compositions. In contrast to cellular organelles surrounded by lipid membranes, the composition of distinct chromatin domains is rather ill described and highly dynamic. To identify proteins associated with a specific chromatin domain and to better understand how those domains are established and maintained, we used a new method, which we termed AMPL-MS (Antibody mediated proximity labelling mass spectrometry). This method is based on antibodies and does not require the expression of fusion proteins and therefore constitutes a versatile and very sensitive method to characterize chromatin domains containing specific signature proteins or histone modifications. We used AMPL-MS to characterize the composition of chromocenter as well as the chromosome territory containing the hyperactive X-chromosome in Drosophila. As an outcome of this method, we show the importance of RNA in maintaining the integrity of these domains as treatment with RNAse alters their proteomic composition. Our data demonstrate the power of AMPL-MS to characterize the composition of non-membranous nuclear domains.

biochemistry↗