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Biology subjects

Taneja, C.

Publications and source records attributed to Taneja, C..

2 recordsLinked to original sources

De-novo design of actively spinning and gyrating spherical micro-vesicles

Engineering spherical self-propelled swimmers that exhibit rotation and directed translation has posed a significant experimental challenge in biomedicine design. Often a secondary external field or asymmetric geometry is employed to generate rotation, complicating the design process. In this work, we utilize spherical Giant Unilamellar Vesicles (GUVs) as chassis and enzymes undergoing cyclic, non-reciprocal conformational changes as power units to establish design principles to synthesize autonomous spherical micro({micro})-rotors. Leveraging transient interactions, we induce spontaneous symmetry-breaking in enzyme distribution on GUVs, enabling diverse movements from pure spinning to spiral 3D trajectories. With this design, we now open new avenues for advancing self-propelled systems with biocompatible materials, unlocking innovations in biomedical applications.

biophysics↗

Sidelobe suppressed Bessel beams for one-photon light-sheet microscopy

Bessel beams (BB) have found widespread adoption in various forms of light-sheet microscopy. However, for one-photon fluorescence, the transverse profile of the beam poses challenges due to the detrimental effect of the sidelobes. Here, we mitigate this issue by using a computer generated phase element for generating a sidelobe suppressed Bessel beam (SSBB). We then progress to perform a comparison of biological imaging using SSBB to standard BB in a light-sheet geometry. The SSBB peak intensity is more than an order of magnitude higher than the first sidelobe. In contrast to a standard BB light-sheet, SSBB does not need deconvolution and propagates to depths exceeding 400m in phantom samples maintaining a transverse size of 5 m. Finally, we demonstrate the advantage of using a SSBB light-sheet for biological applications by imaging fixed early-stage zebrafish larvae. In comparison to the standard BB, we observe a two-fold increase in contrast-to-noise ratio (CNR) when imaging the labelled cellular eye structures and the notochords. Our results provide an effective approach to generating and using SSBB light-sheets to enhance contrast for one-photon light-sheet microscopy.

biophysics↗