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Biology subjects

Guntupalli, S.

Publications and source records attributed to Guntupalli, S..

3 recordsLinked to original sources

Combinatory EHMT and PARP inhibition induces an interferon response and a CD8 T cell-dependent tumor regression in PARP inhibitor-resistant models

Euchromatic histone lysine methyltransferases 1 and 2 (EHMT1/2), which catalyze demethylation of histone H3 lysine 9 (H3K9me2), contribute to tumorigenesis and therapy resistance through unknown mechanisms of action. In ovarian cancer, EHMT1/2 and H3K9me2 are directly linked to acquired resistance to poly-ADP-ribose polymerase (PARP) inhibitors and are correlated with poor clinical outcomes. Using a combination of experimental and bioinformatic analyses in several PARP inhibitor resistant ovarian cancer models, we demonstrate that combinatory inhibition of EHMT and PARP is effective in treating PARP inhibitor resistant ovarian cancers. Our in vitro studies show that combinatory therapy reactivates transposable elements, increases immunostimulatory dsRNA formation, and elicits several immune signaling pathways. Our in vivo studies show that both single inhibition of EHMT and combinatory inhibition of EHMT and PARP reduces tumor burden, and that this reduction is dependent on CD8 T cells. Together, our results uncover a direct mechanism by which EHMT inhibition helps to overcome PARP inhibitor resistance and shows how an epigenetic therapy can be used to enhance anti-tumor immunity and address therapy resistance.

cancer biology↗

Cellular, Molecular, and Enzymatic Signatures ofThrombi are Vascular Bed-Dependent

BackgroundThe contribution of arterial and venous thrombi to vascular remodeling is unclear. While catheter-extraction of thrombus in cerebrovascular accident (CVA) is time-sensitive, similar urgency is rare in managing venous thromboembolism (VTE). ObjectivesOur goal was to determine molecular cellular signatures of thrombus extracted by catheter from various vascular beds to gain insight into vascular remodeling. MethodsTwenty-five patients underwent catheter-directed thrombectomy (CDT), 13 for acute CVA, 8 for pulmonary embolism (PE), and 4 for deep vein thrombosis (DVT). Protein and RNA extracted from thrombus was evaluated by immunoblotting and sequencing, respectively. Thrombus-derived enzymes for which substrate is present in the blood vessel wall were examined for enzymatic activity. ResultsTime from symptom onset to thrombus extraction was 7.7 {+/-} 1.9 hours for CVA and 109 {+/-} 55 hours for VTE. Protein concentration, white blood cell and red blood cell content were all greater in venous compared with arterial thrombus while platelet content was similar. Both venous and arterial thrombus contained multiple Matrix Metalloproteinase (MMP) isoforms. MMP9 specific activity was greater in venous than in arterial thrombus (57 {+/-} 6 ng/mL.g protein-1 vs. 24 {+/-} 8 ng/mL.g protein-1, P=0.0051). ConclusionsArterial and venous thrombus have dissimilar phenotypes, each with biologically-active enzymes known to remodel blood vessels, and enzymatic activity proportional to the white blood cell content which increases with thrombus age. These data suggest a mechanistically-important role for early CDT to avoid the consequences of irreversible vascular remodeling. Condensed AbstractEmergent extraction of acute thrombus from arterial vascular beds restores limb and end-organ perfusion and is widely-accepted to be the standard of care. Extraction of thrombus from venous vascular beds, however, is rarely considered urgent, even though many patients subsequently develop debilitating symptoms. By capitalizing on privileged thrombus extracted from multiple vascular beds, we gained mechanistic insight regarding the cellular composition and cell-derived enzymes secreted from thrombus that may remodel the vessel wall. This study shows thrombi are biologically-active entities, continuously recruiting circulating cells that secrete enzymes both proportional to thrombus age and the time of patient presentation.

biochemistry↗

Ubiquitination of the GluA1 subunit of AMPA receptors is required for synaptic plasticity, memory and cognitive flexibility

Activity-dependent changes in the number of AMPA-type glutamate receptors (AMPARs) at the synapse underpin the expression of long-term potentiation (LTP) and long-term depression (LTD), cellular correlates of learning and memory. Post-translational ubiquitination has emerged as a key regulator of the trafficking and surface expression of AMPARs, with ubiquitination of the GluA1 subunit at Lys-868 controlling the post-endocytic sorting of the receptors into the late endosome for degradation, and thereby regulating their stability at synapses. However, the physiological significance of GluA1 ubiquitination remains unknown. In this study, we generated mice with a knock-in mutation in the major GluA1 ubiquitination site (K868R) to investigate the role of GluA1 ubiquitination in synaptic plasticity, learning and memory. Our results reveal that these mice have normal basal synaptic transmission but exhibit enhanced LTP and deficits in LTD. They also display deficits in short-term spatial memory and cognitive flexibility. These findings underscore the critical roles of GluA1 ubiquitination for bidirectional synaptic plasticity and cognition.

neuroscience↗