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Biology subjects

Upadhyaya, K.

Publications and source records attributed to Upadhyaya, K..

3 recordsLinked to original sources

A family of E3 ligases extend K11 polyubiquitin on sites of MARUbylation

Ubiquitin (Ub) cooperation with other post-translational modifications provides a tiered opportunity for protein regulation. Small modifications to Ub such as phosphorylation, acetylation, or ADP-ribosylation have varying impacts on signaling. The Deltex family of E3 ligases was previously implicated in the ubiquitylation of ADP-ribose (ADPr) and ADPr-containing macromolecules. Our previous work found ester-linked mono-ADPr ubiquitylation (MARUbylation) on PARP7 and PARP10 in cells and that this mark is extended with K11 polyUb. We previously screened for E3 ligases that interact with PARP7 through three different approaches and identified six candidates, including the Deltex family member DTX2. One of these hits, RNF114, interacts with various other PARPs, leading us to hypothesize that RNF114 binds to sites of MARUbylation and extends K11 polyUb. Here, we show that DTX2 generates the initial MARUbe on PARP7 in cells, which depends on PARP7 catalytic activity. The MARUbe on PARP7 is extended with K11 polyUb by RNF114. To investigate the mechanism of RNF114 reader/writer function, we developed a click chemistry-inspired chemoenzymatic approach to create a novel fluorescent Ub-ADPr probe for studying its interaction with RNF114. Strikingly, we found that RNF114 has a weak affinity for ADPr and Ub separately but explicitly recognizes the linkage between Ub and ADPr present in MARUbylated species. We used AlphaFold3 modeling to examine the mechanisms of Ub-ADPr recognition and K11-linked polyUb extension by RNF114. We identified a tandem Di19-UIM module in RNF114 as a MARUbe-binding domain (MUBD), thus providing a reader function that interfaces with K11-specific writer activity. Finally, we described a small family of MUBD-containing E3 ligases that demonstrate preference for Ub-ADPr, which we call MARUbe-Targeted Ligases (MUTLs).

biochemistry↗

Varietal screening of newly developed blackgram genotypes against Cercospora Leaf Spot (Cercospora canescens) in the Terai region of Nepal.

Screening of 12 blackgram genotypes against Cercospora Leaf Spot (Cercospora canescens) was carried out in RCB design with 3 replications in research plot of Mid-West Academy and Research Institute, Tulsipur, Dang during Bhadra to Mangsir, 2078 B.S. The blackgram genotypes were brought from Grain Legumes Research Program, Khajura, Banke. Disease severity was taken 3 times at 40, 47, and 54 days after sowing. Disease scoring was done as a percentage of leaf area infected on the individual plant at 7-day intervals and disease incidence, disease severity, mean AUDPC, and mean yield was calculated. Disease incidence was not significant among the tested genotypes. Disease severity at 40, 47, and 54 DAS was highly significant among the genotypes. Mean disease score and mean area under disease progressive curve (AUDPC) were also highly significant. Among the genotypes, 10 genotypes were categorized as moderately resistant and 2 genotypes (BLG 0066-1-1 and BLG 0035-1) were categorized as moderately susceptible. The highest Mean AUDPC value (324.1) was possessed by BLG 0035-1 followed by BLG 0066-1-1 (317.6). The lowest mean AUDPC value (175) was possessed by BLG 0069-1. A highly significant difference was found in yield among the black gram genotypes. The highest yield (799 kg/ha) by obtained by BLG 0068-2 followed by Rampur mas (769 kg/ha). The lowest yield (495 kg/ha) was obtained by BLG 0066-1.

pathology↗

A genetically encoded sensor for real-time monitoring of poly-ADP-ribosylation dynamics in-vitro and in cells

ADP-ribosylation, the transfer of ADP-ribose (ADPr) from nicotinamide adenine dinucleotide (NAD+) groups to proteins, is a conserved post-translational modification (PTM) that occurs most prominently in response to DNA damage. ADP-ribosylation is a dynamic PTM regulated by writers (PARPs), erasers (ADPr hydrolases), and readers (ADPR binders). PARP1 is the primary DNA damage-response writer responsible for adding a polymer of ADPR to proteins (PARylation). Real-time monitoring of PARP1-mediated PARylation, especially in live cells, is critical for understanding the spatial and temporal regulation of this unique PTM. Here, we describe a genetically encoded FRET probe (pARS) for semi-quantitative monitoring of PARylation dynamics. pARS feature a PAR-binding WWE domain flanked with turquoise and Venus. With a ratiometric readout and excellent signal-to-noise characteristics, we show that pARS can monitor PARP1-dependent PARylation temporally and spatially in real-time. pARS provided unique insights into PARP1-mediated PARylation kinetics in vitro and high-sensitivity detection of PARylation in live cells, even under mild DNA damage. We also show that pARS can be used to determine the potency of PARP inhibitors in vitro and, for the first time, in live cells in response to DNA damage. The robustness and ease of use of pARS make it an important tool for the PARP field.

biochemistry↗