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Chauhan, V. M.

Publications and source records attributed to Chauhan, V. M..

2 recordsLinked to original sources

Fluorescent pH-sensitive nanosensors enable precise low-volume monitoring in high-throughput bioprocess manufacturing

Abstract / SummaryBiopharmaceutical manufacturing requires precise pH control during production to ensure product quality and process performance. However, achieving this precision in low-volume, high-throughput automated settings present significant challenges with existing technology, often leading to inefficiencies and inaccuracies. This study introduces fluorescent nanosensors as a novel solution for accurate pH monitoring in micro-scale environments. Employing ratiometric fluorescence measurement, these nanosensors use analyte responsive and reference fluorophores in inert polyacrylamide matrices to perform dynamic measurements over pH 3.5 - 7.5. Nanosensors (35.26 {+/-} 3.66 nm diameter) were synthesised with a neutral or positive surface charge (-5.08 {+/-} 4.05 mV and +12.87 {+/-} 1.25 mV, respectively). An automated workflow, using sacrificial and at line sample analysis, was developed by integrating the nanosensors with a TECAN automated liquid handling platform and a fluorescence spectrophotometer. The method was verified using in-process samples obtained from a monoclonal antibody purification, to highlight the compatibility of the nanosensors to different buffer systems in a typical biopharmaceutical manufacturing process. We show that pH-sensitive nanosensors can effectively monitor pH through the various stages of purification, demonstrating high accuracy (pH {+/-} 0.23-0.40) even in sample volumes as low as 12.5 L. The application of nanosensors represents a significant advancement in high-throughput scale-down bioprocess development by enabling precise, automated pH adjustment. This study improves the understanding of biopharmaceutical manufacturing, through the application of fluorescent nanosensors, paving-the-way for optimisations in low-volume and high-throughput product production. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=77 SRC="FIGDIR/small/612862v1_ufig1.gif" ALT="Figure 1"> View larger version (23K): org.highwire.dtl.DTLVardef@1fe2ef1org.highwire.dtl.DTLVardef@bbf524org.highwire.dtl.DTLVardef@1db0edcorg.highwire.dtl.DTLVardef@aca81c_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Molecular surface chemistry defines nematode development, identity and behaviour

ABSTRACT/SUMMARYChemical signalling facilitates organismal communication and coordinates physiological and behavioural processes. In nematodes, signalling has predominantly focused on secreted molecules leaving the surfaces communicative potential unexplored. By utilising 3D-OrbiSIMS, an advanced surface-sensitive mass spectrometry method, we directly characterised the molecular composition of the outermost regions (50 nm in depth) of Caenorhabditis elegans and Pristionchus pacificus to improve the understanding of surface-mediated chemical communication. We found that nematode surfaces consist of a lipid-dominated landscape (> 81 % C. elegans and > 69 % P. pacificus of all surveyed chemistries) with distinct compositions, which enrich in granularity and complexity through development. The surface-anchored lipids are also species-specific, reflecting evolutionary and ecological adaptations to their environmental niches. By exploring the effect of mutations on lipid production we found the peroxisomal fatty acid {beta}-oxidation component daf-22 is essential for defining the surface molecular fingerprint. This pathway is conserved across species in producing distinct chemical profiles, indicating its fundamental role in lipid metabolism and for maintaining surface integrity and function. Furthermore, we discovered that variations in surface-anchored lipids of C. elegans daf-22 larvae contribute to significantly increased susceptibility to predation by P. pacificus. Therefore, our findings reveal that the nematode surface is not just a passive boundary but a dynamic signalling platform with evolved, species-specific signatures. These molecular mechanisms are pivotal in shaping identity and communication strategies, providing new insights into the evolutionary and ecological dynamics of chemical signalling across organisms. HIGHLIGHTSO_LINematode surfaces are lipid-rich, changing with development. C_LIO_LISurface lipids are species-specific, reflecting adaptations. C_LIO_LIThe daf-22 gene is key in shaping the surface lipid profile. C_LIO_LISurface lipids mediate predator-prey interactions in nematodes. C_LI

systems biology↗