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Kadam, P.

Publications and source records attributed to Kadam, P..

3 recordsLinked to original sources

Activation of the protective arm of renin-angiotensin system enhances mitochondrial turnover improving respiration and decreasing integrated stress response in a human Complex III deficiency model.

Primary mitochondrial diseases are clinically and genetically heterogeneous disorders, commonly caused by defects in the oxidative phosphorylation system. This heterogeneity presents major challenges for therapeutic development; however, a shared hallmark across these diseases is the accumulation of dysfunctional mitochondria. Enhancing mitochondrial turnover, by activating the selective degradation of dysfunctional mitochondria via mitophagy, concurrently with the activation of mitochondrial biogenesis, could represent a shared therapeutic strategy for mitochondrial diseases. Here, we describe a novel mitophagy inducer, CAP-1902. CAP-1902 is a new agonist of the MAS G-Protein Coupled Receptor (MasR). In fibroblasts from patients carrying a BCS1L mutation that impairs complex III (CIII) assembly, CAP-1902 increased mitochondrial turnover by promoting both mitophagy and biogenesis. Specifically, MasR activation triggered the AMPK/ULK1/FUNDC1 mitophagy pathway. Knockdown of FUNDC1 blocked mitophagy but not AMPK activation, confirming pathway specificity. Additionally, a decrease in the occurrence of depolarized mitochondria with treatment indicated the selective targeting of accumulated damaged mitochondria in the disease context. MasR activation by CAP-1902 also stimulated the nuclear translocation of PGC-1, promoting increased expression of transcripts associated with mitochondrial biogenesis, respiratory chain components, and mitochondrial translation. Remarkably, CAP-1902 was ultimately able to restore key defects in CIII-deficient fibroblasts by rescuing bioenergetics and correcting both the aberrant lysosomal distribution and the elevated integrated stress response markers, which is consistent with a shift toward a healthier mitochondrial population. In summary, we describe the first potential GPCR-mediated treatment of mitochondrial diseases and demonstrate that MasR activation by CAP-1902 induces mitochondrial turnover and improves mitochondrial function.

cell biology↗

Breaking barriers: A new phytomedicine based treatment approach for targeted unrevealed non-canonical DNA structures in tuberculosis bacteria.

Tuberculosis (TB), caused by Mycobacterium tuberculosis (Mtb), remains a critical global health issue, complicated by the emergence of multi-drug-resistant (MDR) and extensively drug-resistant (XDR) strains. Current treatments involve prolonged use of first- and second-line drugs, which are associated with severe side effects and poor patient adherence. Non-canonical DNA structures, such as G-quadruplexes (GQ) and i-Motifs (iM), play a vital role in regulating Mtbs virulence, stress responses, and drug resistance mechanisms, making them attractive targets for therapy. Flavonoids, naturally occurring polyphenolic compounds found in various fruits and vegetables have demonstrated the ability to enhance the effectiveness of traditional TB drugs while minimizing cytotoxicity. By employing biophysical techniques including UV-Vis absorption spectroscopy, binding constant determination, and thermal melting experiments, this study investigates the interaction between two flavonoids, quercetin and kaempferol and non-canonical DNA structures (GQ and iM) within the Mtb genome. Key GQ/iM sequences from Mtb genes associated with drug resistance were identified and evaluated for their binding with flavonoids. Results revealed that quercetin and kaempferol preferentially interact with specific cyp51 GQ, dnaB GQ, espB GQ, espE GQ, SigA iM, fabH iM, psk5 iM DNA sequences, as indicated by significant changes in absorption spectra. The calculated binding constants showed strong affinities for these specific DNA structures. Thermal melting experiments further indicated that flavonoids increased the thermal stability of these particular GQ and iM DNA, suggesting stabilization via strong stacking interactions. These findings highlight the potential of flavonoids as promising agents to target GQ/iM DNA structures, offering a new strategy for addressing Mtb drug resistance and virulence.

biophysics↗

Local genetic adaptation to habitat in wild chimpanzees

How populations adapt to their environment is a fundamental question in biology. Yet we know surprisingly little about this process, especially for endangered species such as non-human great apes. Chimpanzees, our closest living relatives, are particularly interesting because they inhabit diverse habitats, from rainforest to woodland-savannah. Whether genetic adaptation facilitates such habitat diversity remains unknown, despite having wide implications for evolutionary biology and conservation. Using 828 newly generated exomes from wild chimpanzees, we find evidence of fine-scale genetic adaptation to habitat. Notably, adaptation to malaria in forest chimpanzees is mediated by the same genes underlying adaptation to malaria in humans. This work demonstrates the power of non-invasive samples to reveal genetic adaptations in endangered populations and highlights the importance of adaptive genetic diversity for chimpanzees. One-Sentence SummaryChimpanzees show evidence of local genetic adaptation to habitat, particularly to pathogens, such as malaria, in forests.

evolutionary biology↗