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Biology subjects

Basak, T.

Publications and source records attributed to Basak, T..

2 recordsLinked to original sources

DIGEST: An online tool for designing of multiple reaction monitoring assays

Targeted proteomics using multiple reaction monitoring (MRM) assays enables fast and sensitive detection of a preselected set of target peptides. This technique utilizes the specificity of precursors to product transitions for quantitative analysis of multiple proteins in a single sample. The success of an MRM experiment depends on the selection of transitions however, given the existing resources, accurately predicting signal intensity of peptides and their fragmentation patterns ab initio is challenging task. We present an alternative for rapid design of MRM transitions for proteomics research: DIGEST. Our method predicts the b and y ions with +1 and +2 charge produced in a collision cell of a mass spectrometer from peptides of multiple proteotypically digested proteins. Additionally, by using the existing knowledge of the fundamental rules for designing transitions, the tool provides optimal MRM transitions, negating the need to undertake prior "discovery" MS studies. We demonstrate that our algorithm is directed toward the selection of MRM precursor and product-ions pairs, and can avoid the pitfalls of interference due to cross-contamination of samples by selecting ion combinations that uniquely map to target peptides. Comparison with SRMAtlas showed that DIGEST successfully predicted the peptide and production pairs in the majority of cases. We believe that DIGEST will facilitate rapid design of MRM assays with increased specificity, reducing the overall time required to design an MRM assay for routine mass-spectrometry. DIGEST is available as a web-based tool at https://digest.raylab.iiitd.edu.in/

bioinformatics↗

Decoding the comprehensive substrate-specificity and evidence of altered site-specific collagen prolyl-3-hydroxylation, lysyl-hydroxylation, and lysyl O-glycosylation in P4ha1 and P4ha2 deleted mutant mice

Collagens, the most abundant proteins in mammals, play pivotal roles in the maintenance of tissue structure, functions, cell-to-cell communication, cellular migration, behavior, and growth. Collagens are highly complex in structure due to the dynamic post-translational modifications (PTMs) such as hydroxylations (on prolines and lysine residues) and O-glycosylation (on hydroxylysines) enzymatically catalyzed during biosynthesis. The most prevalent modification in fibrillar collagens is prolyl 4-hydroxylation catalyzed by collagen prolyl 4-hydroxylases (C-P4hs). Prolyl 4-hydroxylation on collagens plays a critical role in collagen biosynthesis, thermostability, and cell-collagen interactions. However, the site-specificity of prolyl 4-hydroxylase 1 (P4ha1) and P4ha2 is not comprehensively studied yet. Further, the effect of P4ha1 and P4ha2 on the plethora of other site-specific collagen PTMs is not known to date. In-depth mass-spectrometry data (PXD008802) analysis of mice skin collagen I extracted from wild-type and different deletion mutants of C-P4hs revealed that partial or full deletion of prolyl 4-hydroxylases (P4ha1 and P4ha2) significantly decreases collagen deposition in ECM hinting towards perturbed biosynthesis. A total of 421 site-specific PTMs on fibrillar collagen chains (Col1a1, Col1a2, and Col3a1) were identified. Further, novel 23 P4ha1 specific, 8 P4ha2 specific, and 18 C-P4hs promiscuous sites on fibrillar collagen chains were identified. Partial deletion of P4ha1 and full deletion of P4ha2 also resulted in altered levels of the site-specific prolyl-3-hydroxylation occupancy in collagen I. Surprisingly, an increased level of site-specific lysyl hydroxylation (Col1a1-K731, Col1a2-K183,315) was documented upon partial deletion of P4ha1 and full deletion of P4ha2. Our findings showcased that the activity of prolyl 4-hydroxylases is not limited to 4-hydroxylation of specific proline sites, but simultaneously can perturb the entire biosynthetic network by modulating prolyl 3-hydroxylation and lysyl hydroxylation occupancy levels in the fibrillar collagen chains in a site-specific manner.

biochemistry↗