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Shastri, V. P.

Publications and source records attributed to Shastri, V. P..

3 recordsLinked to original sources

Bespoke sustainable 3D-printed labware for enhanced handling and standardization of tumor spheroid migration and invasion assays

Three-dimensional (3D) cell culture models, particularly multicellular tumor spheroids, have become essential tools for studying cancer biology, drug screening, and preclinical testing due to their ability to mimic physiological tumor microenvironments. However, traditional invasion assays, such as Boyden-chamber- or Transwell-based systems, often suffer from variability introduced by spheroid handling and transfer, compromising data reproducibility. Here, we present a novel, 3D-printed migration and invasion platform --the MQm-sert-- designed to standardize and streamline spheroid-based invasion assays while maintaining spheroid integrity. Fabricated via fused filament fabrication using biobased polylactic acid, the MQm-sert integrates a hanging-drop spheroid culture system (MQm-sert) with a membrane-based invasion chamber (M-sert), eliminating the need for disruptive spheroid transfer steps. Using synthetic tumor environment mimics (STEMs) composed of breast cancer cells (MDA-MB-231 and MCF7), mesenchymal stromal cells (MSCs), and human pulmonary microvascular endothelial cells (HPMECs), we quantified invasion dynamics and cellular interactions. This innovation significantly reduces experimental variability, as demonstrated by lower variance in invasive cell mass dimensions and cell density compared to conventional workflows. Beyond biological insights, the platform aligns with sustainability goals by leveraging cost-effective, open-source 3D printing, reducing reliance on commercial labware, and addressing key challenges in 3D cell culture standardization.

bioengineering↗

Engineering Stable Hydrogels with Polydisperse Yeast Exopolysaccharides for Embedding Cancer Spheroids

Polysaccharides are often used to mimic physiological environments such as for cancer research models. However, established polysaccharides can display limited long-term stability and high batch-to-batch variability. To overcome this, biomanufactured polysaccharides are increasingly utilized in biomaterials. Here, we produced and characterized Rhodotorula toruloides yeast exopolysaccharides (EPS) and used it to engineer hydrogel for culturing cancer cells. Yeast fermentation of glucose, mannose, and xylose yielded varying EPS amounts (1.68, 1.44, and 0.48 g/L, respectively) with similar compositions, suggesting a common biosynthetic pathway. The glucose-derived EPS characterization identified multiple linkage types and three molecular weight fractions (1.75, 30.0, and 1000 kDa), and its solutions exhibited Newtonian behavior, indicating minimal chain-chain interactions. Solubilizing this polydisperse EPS with polyethylene glycol diacrylate and UV-crosslinking it enabled the engineering of semi-interpenetrating polymer network hydrogel that efficiently embedded cancer spheroids. Our study introduces an integrated biomanufacturing strategy to generate stable and consistent biomaterials, applicable for tissue engineering. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=104 SRC="FIGDIR/small/703759v1_ufig1.gif" ALT="Figure 1"> View larger version (31K): org.highwire.dtl.DTLVardef@110d079org.highwire.dtl.DTLVardef@e6e390org.highwire.dtl.DTLVardef@662540org.highwire.dtl.DTLVardef@17afd5_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Biophysical basis for the induction of glioblastoma-like phenotype in astrocytes

While the direct biological factors underlying the progression of GBM, an aggressive form of brain cancer, have been extensively studied, emerging evidence suggests that indirect biological triggers, such as traumatic brain injury (TBI), may also have a role. Since reactive astrocytes are associated with TBI, and astroglial cells are the source of proteoglycans which contribute to changes in biophysical characteristics (stochastic topography, stiffness) of the brain, we postulated a role for stochastic nanoroughness in the induction of glioma. Using a model system to emulate such physical cues, we demonstrate that human cortical astrocytes undergo spontaneous organization into spheroids in response to nanoroughness and retain the spheroid phenotype even upon withdrawal of the physical cues. Furthermore, spheroids serve as aggregation foci for naive astrocytes; express activated MMP2, and disseminate upon implantation in mouse brain. RNA-seq revealed a tumoral phenotype with a gene expression pattern involving p53, ADAMTS proteases and fibronectin. Moreover, nanoroughness mediates a cross-talk between cancer cells and astrocytes through induced senescence. These findings implicate a role for stochastic biophysical cues in driving a potential malignant transformation of astrocytes.

neuroscience↗