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Shanbhag, K.

Publications and source records attributed to Shanbhag, K..

2 recordsLinked to original sources

Chemical Proteomics Identifies Protein Ligands for Monoacylglycerol Lipids

Signaling lipids are hormone-like small biomolecules that regulate many critical facets of physiology in mammals, including humans. Given their biomedical importance, the past few decades have seen a tremendous increase in our mechanistic understanding of the physiological processes regulated by a handful of such signaling lipids (e.g.: endocannabinoids, lysophospholipids, prostaglandins). However, a significant number of signaling lipid classes still remain poorly characterized, despite their direct associations to human pathophysiology and disease. Over the past decade, the advent of chemical proteomics technologies coupled with the development of multifunctional lipid probes has rapidly expanded our knowledge in terms of the protein ligands and biological pathways that the different signaling lipids interact with and modulate respectively. While the signaling pathways regulated by the endocannabinoid 2-arachidonoyl-glycerol in mammals are extensively characterized, the same cannot be said for the other members of the monoacylglycerol (MAG) family of signaling lipids. To understand this, here, we report the synthesis of a bifunctional MAG probe, containing a photoreactive group and a biorthogonal handle. Using established chemical proteomics approaches, we profile this bifunctional MAG probe in mouse brain and mammalian cell lysates, and leveraging probe competition experiments identify hitherto unknown protein ligands for MAG lipids. Finally, we biochemically validate the neuronal calcium sensor Hippocalcin as a putative MAG protein ligand, and show for the first time, that MAG may have a role to play in calcium sensing and downstream signaling in the mammalian brain.

biochemistry↗

Breast cancer spheroids prefer activated macrophages as an accomplice: An in vitro study

Cancer, a heterogeneous disease in nature, often requires help from diverse pro-tumor or tumor-associated- cells, which are recruited and persevered within the stroma. Pro-tumor stromal cells provide the essential support needed for tumor growth, metastasis, and development of drug resistance in due time. Tumor-associated macrophages, one of such cells, are essential to tumor microenvironment and tumor survival. In recent years, TAMs have been identified as potential drug targets and therapeutic agents, which encourages the in-depth characterization of their crosstalk with the tumors. The current study has successfully developed a cost-effective in vitro platform for Chemokine Assisted Recruitment of Macrophages to spheroids mimicking the physiology of TAM recruitment. Firstly, monocytic cell line (U937) were converted into activated naive macrophages (M0) and pro-and anti-inflammatory (M1 and M2) subtypes. Monocytes, M0, M1, and M2 macrophages are characterized extensively. Secondly, the naive and polarized macrophages were subjected to chemokine-dependent recruitment into monotypic and heterotypic breast cancer spheroids. The nature of the recruitment is further investigated by assessing the profile of chemokines and chemokine receptors. Recruited macrophages are also observed to manipulate spheroid behavior in many ways. The recruited macrophages also exhibit an increased level of Siglec-1 (CD169), one of the potential TAM markers. The current platforms potential for application can be extended to understand the recruitment process of other immune/stromal cells to solid tumors. It could be a potential addition to the arrays of in vitro platforms developed to screen the efficiency of cell-based immunotherapeutics in the future.

cancer biology↗