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Kamarulzaman, L.

Publications and source records attributed to Kamarulzaman, L..

2 recordsLinked to original sources

Comprehensive molecular profiling of single-cell proteome via gel electrophoresis and 3D single-molecule imaging

Recent advances in shotgun proteomics and immunoassays have yielded powerful single-cell proteomics technologies. However, current methods lack the sensitivity required to comprehensively quantify protein abundances in individual cells. Here, we present single-cell PAGE-PISA, an ultra-sensitive proteome profiling strategy that combines gel electrophoresis with 3D single-molecule fluorescence imaging. Our approach labels all proteins in single cells with fluorescent dyes, separates them by electrophoresis, and counts with single-molecule resolution. This technique quantified over 107 protein copies from a single mammalian cell with the sensitivity to detect low-abundance proteins down to 104 copies per species. Single-cell PAGE-PISA successfully classified cells into distinct cell types based on their proteomic profiles. Furthermore, our single-cell proteome data strongly correlated with predicted developmental states during cardiomyocyte differentiation, providing complementary information to single-cell transcriptome data. Together, single-cell PAGE-PISA enables highly sensitive and quantitative proteome profiling at the single-cell level, capturing subtle proteomic differences that distinguish diverse cellular states.

biophysics↗

PISA: versatile microscope for 3D single molecule light sheet imaging

Light sheet microscopy combines high sensitivity and imaging speeds with low photodamage, however a remaining hurdle to its widespread adoption is its requirement for special sample preparation. Our new microscope - planar illumination microscope for single molecule imaging for all purpose (PISA) - significantly relieves these restrictions to enable light sheet imaging of coverslip-mounted samples as commonly analyzed in biological microscopes. We show how this technology now permits high-throughput imaging using multi-well plates. Further, the ability of 3D single molecule imaging in microlitre or mm3 scale volumes over the coverslip improves the sensitivity of biochemical gel-based fluorometric assays to atto/zepto molar levels. PISA will facilitate widespread adoption of light sheet imaging for a variety of biological, biochemical and medical investigations.

biophysics↗