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Biology subjects

Masaki, M.

Publications and source records attributed to Masaki, M..

2 recordsLinked to original sources

Regulation of sphingolipid synthesis by the C2H2 zinc finger transcription factor Com2 through ubiquitin-proteasome mediated degradation pathway

Membrane lipid synthesis is globally coordinated by a limited set of master transcription factors that regulate broad gene networks encoding lipid-metabolic enzymes and their regulators. Here, we identify the C2H2 zinc-finger transcription factor Com2 as a regulator of sphingolipid homeostasis in Saccharomyces cerevisiae that promotes transcription of downstream targets, including the protein kinase Ypk1, a key activator of sphingolipid synthesis. Com2 protein abundance increased upon treatment with myriocin, an inhibitor of sphingolipid synthesis, but rapidly decreased after addition of phytosphingosine (PHS), a precursor of complex sphingolipids; this decrease was blocked by proteasome inhibitors. These results suggest that Com2 is regulated in a sphingolipid-dependent manner through proteasome-mediated degradation. Moreover, a Com2 mutant in which lysine residues putatively involved in ubiquitination were replaced with arginine exhibited attenuated PHS-dependent degradation and elevated phosphorylation. Likewise, a mutant in which putative phosphorylation sites were replaced with alanine showed reduced PHS-dependent degradation. Together, these findings indicate that Com2 undergoes phosphorylation-dependent degradation via the ubiquitin-proteasome system in response to sphingolipid levels.

cell biology↗

Broadband electronic resonance coherent anti-Stokes/Stokes Raman scattering microscopy

Coherent Raman imaging (CRI) enables label-free chemical imaging based on intrinsic molecular vibrations, but its applicability is often limited by low sensitivity, hindering the detection of low-abundance biomolecules. While electronic resonance significantly enhances sensitivity, most resonance CRI implementations rely on narrowband excitation and/or detection, which limits spectral coverage and makes it difficult to distinguish target molecules from backgrounds. Here we address these challenges by developing broadband electronic-resonance coherent anti-Stokes/Stokes Raman scattering (BER-CARS/CSRS) microscopy. We show that BER-CARS/CSRS enables highly sensitive, label-free imaging of endogenous chromophores with broad spectral coverage of the entire fingerprint region. Specifically, we captured time-lapse images across the fingerprint region, visualizing low-abundance cytochromes alongside abundant biomolecules (lipids, proteins, nucleic acids) in living HEK293 cells. Furthermore, we applied the method to complex biological tissues, mapping distinct distributions of cytochromes in mouse brain slices, highlighting their characteristic localizations in the cortex and the cerebral ventricle wall. Our results demonstrate that BER-CARS/CSRS is a powerful platform for highly sensitive chemical imaging, from large-area tissue mapping to organelle-level dynamics. By coupling resonance enhancement with broadband fingerprinting, BER-CARS/CSRS enables dynamic, label-free phenotyping of mitochondrial and physiological states from single cells to tissues, opening a path to quantitative, slide-scale chemical histopathology and intraoperative margin assessment.

bioengineering↗