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Butler, M. T.

Publications and source records attributed to Butler, M. T..

3 recordsLinked to original sources

Control of microtubules in neuronal processes by profilin 1 and actomyosin

Microtubules, intermediate filaments, and actin are cytoskeletal polymer networks found within the cell. While each has unique functions, all the cytoskeletal elements must work together for cellular mechanics to be fully operative. This is achieved through crosstalk mechanisms whereby the different networks influence each other through signaling pathways and direct interactions. Because crosstalk can be complex, it is possible for perturbations in one cytoskeletal element to affect the others in ways that are difficult to predict. Here we investigated how long-term changes to the actin cytoskeleton affect microtubules and intermediate filaments. Reducing F-actin or actomyosin contractility increased acetylated microtubules and intermediate filament expression, with the effect being significantly more pronounced in neuronal processes. Changes to microtubules were completely reversible if F-actin and myosin activity is restored. Moreover, the altered microtubules in neuronal processes resulting from F-actin depletion caused significant changes to microtubule-based transport, mimicking phenotypes that are linked to neurodegenerative disease. Thus, defects in actin dynamics cause a compensatory response in other cytoskeleton components which profoundly alters cellular function.

cell biology↗

The actin binding protein profilin 1 is critical for mitochondria function

Profilin 1 (PFN1) is an actin binding protein that is vital for the polymerization of monomeric actin into filaments. Here we screened knockout cells for novel functions of PFN1 and discovered that mitophagy, a type of selective autophagy that removes defective or damaged mitochondria from the cell, was significantly upregulated in the absence of PFN1. Despite successful autophagosome formation and fusion with the lysosome, and activation of additional mitochondrial quality control pathways, PFN1 knockout cells still accumulate damaged, dysfunctional mitochondria. Subsequent imaging and functional assays showed that loss of PFN1 significantly affects mitochondria morphology, dynamics, and respiration. Further experiments revealed that PFN1 is located to the mitochondria matrix and is likely regulating mitochondria function from within rather than through polymerizing actin at the mitochondria surface. Finally, PFN1 mutants associated with amyotrophic lateral sclerosis (ALS) fail to rescue PFN1 knockout mitochondrial phenotypes and form aggregates within mitochondria, further perturbing them. Together, these results suggest a novel function for PFN1 in regulating mitochondria and identify a potential pathogenic mechanism of ALS-linked PFN1 variants.

cell biology↗

Zyxin and non-muscle myosin are required for single fibroblast durotaxis, but Rho-kinase activity and the Arp2/3 complex are dispensable

Durotaxis, migration of cells directed by stiffness gradient, is critical in development and disease. To study the molecular determinants of single cell durotaxis, we developed an all-in-one photopolymerized hydrogel system containing areas of stiffness gradients with different slopes, along with uniform stiffness (soft and stiff) regions. We find that fibroblasts rely on non-muscle myosin II (NMII) activity and the LIM-domain protein zyxin for durotaxis on both steep and shallow stiffness gradients. Importantly, unlike haptotaxis, the Arp2/3 complex is dispensable for durotaxis on both stiffness gradients. Lack of Arp2/3 results in a filopodia-based durotactic migration that is equally efficient as that of lamellipodia-based durotactic migration. Finally, we reveal an essential role for the actin-bundler fascin in the formation and asymmetric distribution of filopodia during filopodia-based durotaxis in shallow, but not steep, stiffness gradient. Together, our all-in-one hydrogel system can serve as a platform to identify, discriminate, and characterize stiffness gradient specific molecular mechanisms that cells employ to efficiently durotax.

cell biology↗