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Biology subjects

Puapatanakul, P.

Publications and source records attributed to Puapatanakul, P..

5 recordsLinked to original sources

A shear lag model of the podocyte foot process network predicts a mechanical feedback loop driving progressive effacement

The podocyte foot process network forms the final barrier of the kidneys glomerular filtration system. Under mechanical stress this network is prone to injury in which podocytes lose connectivity to their neighbors and begin the progression toward effacement, but what governs its mechanical resilience is unknown. We show that the network is built like a lap joint: two major processes coupled through interdigitating foot processes, a configuration that behaves as a classical shear lag system, with force concentrating at the joint ends and decaying over a characteristic transfer length set by geometry and stiffness. A discrete network model reproduces the continuum shear lag solution and identifies a hierarchy among governing parameters, with cytoskeletal stiffening of the major process amplifying foot process force more potently than basement membrane stiffness. Applying the model to morphometric data from puromycin aminonucleoside nephrosis, a model of human minimal change disease and early focal segmental glomerulosclerosis, reveals a mechanical positive feedback loop: force concentration drives foot process loss, which raises force on surviving segments and accelerates further loss. This nonlinear amplification implies a threshold beyond which failure becomes self-sustaining, analogous to the critical crack length in fracture mechanics.

biophysics↗

Synaptopodin enables directional mechanoadaptation of integrin-based adhesions

The attachment of cells to their substrate through adhesion complexes is fundamental to tissue architecture and function. These adhesions are inherently optimized to resist shear forces parallel to the substrate, yet certain specialized cells must also withstand substantial perpendicular forces. How cells adapt their adhesion machinery to resist forces in different directions has remained unclear. In the kidney, podocytes experience perpendicular forces from pressurized filtrate flow while maintaining attachment to the glomerular basement membrane through integrin-based adhesions. Here we show that synaptopodin converts adhesions from shear-resistant to perpendicular force-resistant structures through coordinated reorganization of the actin cytoskeleton and adhesion complexes. Using an inertial force application system, we demonstrate that synaptopodin triggers force-dependent redistribution of {beta}1-integrin to the cell periphery specifically in response to perpendicular loading, while synaptopodin-deficient cells lack this directional adaptation and detach. This mechanism operates in multiple cell types and is physiologically essential: synaptopodin-null mice subjected to elevated glomerular pressure develop significant proteinuria and podocyte foot process effacement. These findings reveal a molecular basis for directional mechanoadaptation, whereby a single protein enables cells to reconfigure their adhesion architecture in response to the direction of applied force.

biophysics↗

Orthogonal Force Balance Between Contractility and Shear Stress Governs Podocyte Dynamics

Maintenance of tissue barriers under mechanical stress represents a fundamental biological challenge across organ systems. In the kidney, podocyte cells withstand highly variable hemodynamic forces while preserving a tensioned, nanostructured filtration barrier. Dysregulation of this barrier leads to significant pathology, but the mechanical principles underlying homeostasis of cells against flow of filtrates have not yet been identified. Here, we uncover a counterintuitive mechanical homeostasis mechanism whereby podocyte attachment depends on a dynamic balance between external fluid shear stress and internal cellular contractility. Integrated biomechanical modeling and experiment reveal a previously unrecognized mechanosensing circuit that optimizes integrin distribution at foot process peripheries. Our mathematical framework for cell-matrix adhesion stability reveals, surprisingly, that reducing blood pressure can worsen outcomes when cell contractility is impaired, contrary to clinical belief that lowering blood pressure universally benefits cellular adhesion and kidney function. We validated this principle through mouse models with manipulated blood pressure and myosin inhibition, demonstrating that concurrent reduction of both shear stress and contractility worsens podocyte injury and proteinuria. Super-resolution microscopy confirms our predicted integrin redistribution patterns under these mechanical perturbations. These findings establish a fundamental mechanobiological principle applicable beyond nephrology, and suggest potential treatment pathways targeting non-equilibrium steady states.

cell biology↗

Basement Membrane Structural Integrity Dictates Trans-Tissue Deposition of Laminin in Mammals

Basement membranes (BMs) are specialized extracellular matrices (ECMs) essential for tissue structure and function. In non-vertebrates, ECM components can be produced both locally and by distant tissues. In contrast, mammalian ECM has traditionally been considered to originate predominantly from adjacent or tissue-resident cells. The kidney glomerular basement membrane (GBM), composed of laminin-5{beta}2{gamma}1 and collagen-345(IV), is produced by neighboring epithelial cells and functions as a filtration barrier. Alport syndrome, a genetic kidney disease in children, is characterized by GBM structural defects and ectopic laminin-2 deposition, but the source of this laminin remains unknown. Here, using CRISPR/Cas9 transgenic models, we demonstrated that ectopic laminin-2 originates not from local kidney cells but from the circulation. Furthermore, laminin-2 in the mesangium partially derives from circulating sources even under healthy conditions. Our findings uncover a non-cell-autonomous mechanism whereby GBM integrity regulates circulating protein incorporation, revealing a previously unrecognized trans-tissue regulation of BM composition in mammals.

cell biology↗

Ultrastructure expansion microscopy (U-ExM) of mouse and human kidneys for analysis of subcellular structures

Ultrastructure expansion microscopy (U-ExM) involves the physical magnification of specimens embedded in hydrogels, which allows for super-resolution imaging of subcellular structures using a conventional diffraction-limited microscope. Methods for expansion microscopy exist for several organisms, organs, and cell types, and used to analyze cellular organelles and substructures in nanoscale resolution. Here, we describe a simple step-by-step U-ExM protocol for the expansion, immunostaining, imaging, and analysis of cytoskeletal and organellar structures in kidney tissue. We detail the critical modified steps to optimize isotropic kidney tissue expansion, and preservation of the renal cell structures of interest. We demonstrate the utility of the approach using several markers of renal cell types, centrioles, cilia, the extracellular matrix, and other cytoskeletal elements. Finally, we show that the approach works well on mouse and human kidney samples that were preserved using different fixation and storage conditions. Overall, this protocol provides a simple and cost-effective approach to analyze both pre-clinical and clinical renal samples in high detail, using conventional lab supplies and standard widefield or confocal microscopy.

cell biology↗