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Biology subjects

Joseph, M. D.

Publications and source records attributed to Joseph, M. D..

2 recordsLinked to original sources

PTPN22 Regulates T Cell Synapse Formation through PSTPIP1-Dependent Actin Remodeling

Protein tyrosine phosphatase non-receptor type 22 (PTPN22) is a critical regulator of T cell signaling, working in concert with C-terminal SRC kinase (Csk) to dephosphorylate key signaling proteins and suppress lymphocyte activation. The R620W variant of PTPN22, one of the most prevalent mutations associated with autoimmune diseases, has been implicated in altered T cell responses, although its broader effects on T cell activation are not fully understood. Recent studies have uncovered a novel interaction between PTPN22 and proline-serine-threonine phosphatase interacting protein 1 (PSTPIP-1), a cytoskeletal adaptor protein involved in F-actin remodeling. PSTPIP-1 recruits Wiskott-Aldrich Syndrome Protein (WASp) to facilitate actin foci formation, a process integral to stabilizing TCR microclusters and amplifying downstream signaling. Given that mutations in PSTPIP-1 impair actin remodeling and localize within the PTPN22 binding domain, we hypothesized that PTPN22 modulates actin dynamics through its interaction with PSTPIP-1. Using live and fixed multi-color super-resolution fluorescence imaging, we demonstrate that PTPN22 deficiency or inhibition of its phosphatase activity leads to aberrant Arp2/3-dependent actin remodeling and exaggerated calcium signaling, particularly under low- affinity TCR stimulation. Single-protein resolution imaging via DNA-PAINT further revealed disrupted nanoscale clustering of PSTPIP-1 and TCR in PTPN22-deficient T cells, uncovering a previously unrecognized PSTPIP-1-TCR interaction in the absence of PTPN22. These findings highlight a novel PTPN22-PSTPIP-1 signaling axis, offering new insights into the molecular mechanisms that may contribute to autoimmune disease susceptibility. One Sentence SummaryPTPN22 and PSTPIP-1 control actin remodeling upon T cell synapse formation, modulating TCR clustering and activation.

immunology↗

Super-Resolution Simplified: Sub-10nm Imaging Over Large Areas and Deep Penetration via SDC-OPR and DNA-PAINT

Single Molecule Localization Microscopy (SMLM) has traditionally faced challenges to optimize signal-to-noise ratio, penetration depth, field-of-view (FOV), and spatial resolution simultaneously. Here, we show that DNA-PAINT imaging on a Spinning Disk Confocal with Optical Photon Reassignment (SDC-OPR) system overcomes these trade-offs, enabling high-resolution imaging across multiple cellular layers and large FOVs. We demonstrate the systems capability with DNA origami constructs and biological samples, including nuclear pore complexes, mitochondria, and microtubules, achieving a spatial resolution of 6 nm in the basal plane and sub-10 nm localization precision at depths of 9 {micro}m within a 53 x 53 {micro}m{superscript 2} FOV. Additionally, imaging of the developing Drosophila eye epithelium at depths up to 9 {micro}m with sub-13 nm average localization precision, reveals distinct E-cadherin populations in adherens junctions. Quantitative analysis of Collagen IV deposition in this epithelium indicated an average of 46 {+/-} 27 molecules per secretory vesicle. These results underscore the versatility of DNA-PAINT on an SDC-OPR for advancing super-resolution imaging in complex biological systems.

biophysics↗