Search bioRxiv⌕ Search

Biology subjects

Agrawal, T.

Publications and source records attributed to Agrawal, T..

4 recordsLinked to original sources

Hyaluronan Surface Architecture Dictates Colorectal Cancer Progression and Extracellular Vesicle Communication

Hyaluronan (HA) is a principal component of the tumor glycocalyx in colorectal cancer (CRC). However, how the disease progression is linked to HA abundance and its nanoscale organization remains unclear. Single-molecule measurements of surface glycans on cell membranes and extracellular vesicles (EVs) have not yet been correlated. In this work, using single-molecule force spectroscopy, we mapped HA density and chain length on CRC cells and their EVs across Dukes' stages. HA density increased with stage in both compartments, but their organization diverged. Cell-surface HA became progressively fragmented, whereas EVs remained enriched in short HA chains at every stage. EVs, therefore, appear to select HA during formation rather than inherit it from the parent cell. This divergence had mechanical consequences. Both cells and EVs softened with stage, and removing HA reversed this softening. In addition, coarse-grained membrane simulations revealed that both HA chain length and surface density regulate membrane wrapping, with chain length primarily influencing wrapping kinetics and surface density affecting the final wrapping extent. These findings provide a physical basis for the differences we observed in EV uptake. Reprogramming stage D cells with exogenous high-molecular-weight HA reversed this signature, lowering EV surface HA density, stiffening the vesicles, slowing migration, and suppressing EV uptake by recipient cells. These findings establish HA surface architecture as a stage-encoded and experimentally reversible determinant of CRC progression.

biophysics↗

A Covalent Organic Framework-Inspired β-Ketoenamine Crosslinking Strategy for Robust, Injectable Bovine Serum Albumin Hydrogels with pH-Triggered Drug Release

Globular proteins are difficult to convert into robust hydrogels, as their compact, folded structures bury reactive residues, forcing conventional strategies to rely on denaturation or synthetic-polymer reinforcement that compromise the native protein. Inspired by the beta-ketoenamine bond-forming chemistry of covalent organic frameworks (COFs), we report the crosslinking of native bovine serum albumin (BSA) with 1,3,5-triformylphloroglucinol (TFP), a C3-symmetric trialdehyde, into a chemically defined hydrogel. TFP reacts with surface-exposed lysine residues through an irreversible enol-to-keto tautomerization, confirmed by FTIR and NMR spectroscopy, generating stable {beta}-ketoenamine crosslinks under mild aqueous conditions without denaturing the protein, as verified by intrinsic tryptophan fluorescence. The resulting hydrogels are mechanically robust compared to a reversible-imine control, injectable and self-recovering, exhibit reversible shape memory and substantial load-bearing capacity, and remain stable across a broad pH range over extended periods. The network shows consistent swelling behavior at physiological and mildly acidic pH, with modest compaction under strongly basic conditions; scanning electron microscopy reveals a dense, nodular network for the TFP hydrogel versus an open, sheet-like lamellar morphology for the reversible-imine control. The hydrogel efficiently encapsulates doxorubicin and displays pH-triggered, acid-selective release, which comparative kinetic analysis attributes principally to pH-dependent weakening of DOX-BSA binding affinity (linked to the N-to-F conformational transition of BSA near its isoelectric point) rather than to bulk network swelling or degradation. Doxorubicin-loaded hydrogels show enhanced killing of MCF-7 breast cancer cells relative to the free drug while remaining cytocompatible toward normal mammalian cells, and a ciprofloxacin-loaded variant exhibits potent antibacterial activity against both Gram-positive (M. luteus) and Gram-negative (E. coli) bacteria. This work translates reticular {beta}ketoenamine chemistry into a general platform for robust, stimuli-responsive protein biomaterials.

bioengineering↗

Cell Mechanics Regulate Membrane Tubulation-Driven Trogocytosis in Adherent Cells

Trogocytosis is a widespread and physiologically important process in which one cell ingests fragments of another. It has been observed in diverse biological contexts, such as in Entamoeba histolytica, a human enteric parasite that nibbles host intestinal cells via trogocytosis, thereby invading the tissue and leading to lethal extra-intestinal disease, and in macrophages on interaction with adherent tumor monolayers. Despite its physiological relevance, knowledge of trogocytosis with adherent cells remains elusive. Here, we established a monolayer-based trogocytosis assay and uncovered a distinct membrane-tube-mediated trogocytic mechanism operative in adherent cells. We characterized it into four sequential events: contact, membrane tubulation, stretching, and scission. By targeting the proteic constituents of target cell stiffness, we show that trogocytic output exhibits a non-monotonic dependence on the viscoelastic properties of the target cell, with maximal uptake occurring in an intermediate mechanical regime. Further, we integrated live-cell trogocytosis observations with a viscoelastic model-based theoretical framework to propose a tube-breaking mechanism across distinct mechanical subtypes. Finally, using micropatterning, we demonstrated that target cell shape influences trogocytosis kinetics. This work suggests that trogocytosis is sensitive to the mechanical state of the target cell.

cell biology↗

Valproic Acid Treatment Enhances Chromosome Flexibility and Electron Transport in MCF7 Breast Cancer Cells

The structural integrity of the chromosomes is essential to every functional process within the eukaryotic nuclei. Chromosomes are DNA-histone complexes essential for the inheritance of genetic information to the offspring and any defect in it is linked to mitotic errors, cancer growth, and cellular aging. Changes in the mechanical properties of a chromosome could lead to its compromised function and stability, leading to chromosome breaks. Here, we studied the changes in chromosome physical properties using metaphase chromosomes isolated from human breast cancer cells (MCF7) exposed to Valproic Acid (VPA), a known epigenetic modifier drug involved in histone hyperacetylation and DNA demethylation. Due to chromosomal structural intricacy, preparative and technical limitations of analytical tools, we employed a label-free atomic force microscopy approach for simultaneously visualizing and mapping single chromosome elasticity. Additionally, we performed electron transport characteristics of metaphase chromosomes to elucidate the effect of VPA. Our multi-parametric strategy of probing physical properties of chromosomes offers a new scope in terms of analytical tools for studying chromosomal structural changes/aberrations and associated structure-function relationships pertinent to cancer.

biophysics↗