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Biology subjects

Namanda, F. R.

Publications and source records attributed to Namanda, F. R..

3 recordsLinked to original sources

FHOD3 and DIAPH3 control cell migration and differentially shift the balance of parallel and perpendicular stress fibers

Cell morphology, dictated by the filamentous actin (F-actin) cytoskeleton, is fundamental to cell migration during wound healing and cancer metastasis. Cell morphology is shaped by the extracellular matrix (ECM), which provides mechanical cues in the form of ECM stiffness. These mechanical cues regulate the assembly of the F-actin cytoskeleton which in turn controls cell morphology and cell migration. Formins are key regulators of linear F-actin, assembling it into stress fibers, yet the specific roles of individual formins in controlling distinct stress fiber subpopulations to control cell morphology and migration remain poorly defined. Here, we characterize formin expression across different cell types and leverage the inherent expression and cell morphology differences to identify FHOD3 and DIAPH3 as strongly correlated with cell elongation. We demonstrate that these formins regulate complementary but distinct stress fiber networks. In contractile, but less motile cells, FHOD3 knock-down shifts the balance towards stress fibers oriented perpendicular to the long axis of the cell. In contrast, DIAPH3 knock-down shifts the balance towards stress fibers oriented parallel to the long axis of the cell. However, in less contractile and highly motile cells, knockdown of either formin significantly impairs cell migration speed, suggesting both F-actin fiber networks are necessary for cell migration. Our work establishes a model where FHOD3 and DIAPH3 function through non-overlapping mechanisms to control the F-actin architecture that governs cell shape and motility.

cell biology↗

Aligned collagen fibers drive distinct traction force signatures to regulate contact guidance

Cellular forces on isotropically deposited extracellular matrix (ECM) have been measured extensively. However, in vivo, cells exert traction force on collagen fiber networks within ECM. Often times collagen fibers are aligned as in cancer, fibrosis and during wound healing. How forces are transmitted on aligned collagen fibers and how the cytoskeleton regulates this is unknown. Here, we develop a dual-traction force microscopy (d-TFM) approach that includes collagen fibers attached to flexible substrates with fiduciary markers on both the collagen fibers and underlying flexible substrates. This allows for the measurement of traction forces on collagen fibers in the plane of the cell, ensuring a physiologically relevant environment and accurately quantifying traction force. We find that the elastic modulus of the substrate determines the steady-state traction stress exerted by spreading cells on aligned collagen fibers, but does not affect traction force kinetics. Furthermore, collagen fiber networks on the same elastic modulus as isotropically adsorbed collagen result in higher traction stresses. Formins and Arp2/3 modulate traction stress differently, where formins affect traction stress magnitude, while Arp2/3 affects traction stress kinetics. Interestingly, we found that there is a positive correlation between traction force, migration speed and directionality on aligned collagen fibers. However, traction force does not seem to correlate with speed and directionality across distinct collagen organizational structures and across cell lines. These findings underscore the complex interplay between the mechanics of collagen fiber networks, cytoskeletal regulators and cellular traction forces, providing insights into how cells navigate complex fiber networks during migration. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=127 SRC="FIGDIR/small/650031v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@11bb07forg.highwire.dtl.DTLVardef@e07f23org.highwire.dtl.DTLVardef@baf836org.highwire.dtl.DTLVardef@fda6ba_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗

Branched and Linear F-actin Networks Control Directional Migration Switching Behavior on Aligned Collagen Fibrils

Directed cell migration is essential in many biological processes and is driven by a variety of directional cues, including aligned fibrils in the extracellular matrix (ECM), a phenomenon known as contact guidance. How different cells respond to aligned fibrils and how internal regulators like formins and Arp2/3 control contact guidance is unknown. In this study, a unique system to assemble aligned collagen fibrils on mica and to transfer them onto controllable substrates is used to probe contact guidance. This fibril alignment system reveals that cytoskeletal regulation through myosin contractility and not receptor expression drives contact guidance ability. Highly contractile cells exhibit high-fidelity contact guidance, weakly contractile cells ignore cues and moderately contractile cells use a mixture of both parallel and perpendicular migration strategies on aligned collagen fibrils. In addition to myosin contractility, formins and Arp2/3 control contact guidance in a reciprocal manner across a variety of cell types. Formins, mediators of linear F-actin structures, enhance contact guidance and Arp2/3, a mediator of branched F-actin structures, diminishes contact guidance. This controlled materials system reveals the importance of both myosin-mediated contractility as well as the antagonistic action of formins and Arp2/3 on contact guidance, providing potential targets to tune contact guidance.

bioengineering↗