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Search indexed bioRxiv preprints in genomics, neuroscience, cell biology and bioinformatics. Read source abstracts and check manuscript versions; preprints are not peer reviewed.

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Membrane wetting, molding and reticulation by protein condensates

Cells compartmentalize their components in liquid-like condensates, which can be reconstituted in vitro. Although these condensates interact with membrane-bound organelles, the potential of membrane remodeling and the underlying mechanisms are not well understood. Here, we demonstrate that interactions between protein condensates (including hollow ones) and membranes can lead to remarkable morphological transformations and describe these with theory. Modulation of solution salinity or membrane composition drives the condensate-membrane system through two wetting transitions, from dewetting, through a broad regime of partial wetting, to complete wetting. A new phenomenon, namely fingering or ruffling of the condensate-membrane interface is observed when sufficient membrane area is available, producing intricately curved structures. The observed morphologies are governed by the interplay of adhesion, membrane elasticity, and interfacial tension. Our results highlight the relevance of wetting in cell biology, and pave the way for the design of synthetic membrane-droplet based biomaterials and compartments with tunable properties.

biophysics↗

Temporal and spatial frameworks supporting plant responses to vegetation proximity

After perception of vegetation proximity by the phytochrome photoreceptors, shade-avoider plants initiate a set of responses known as the Shade Avoidance Syndrome (SAS). The shade-induced de-repression of active phytochrome B (phyB) releases the repression imposed over the PHYTOCHROME INTERACTING FACTORs (PIFs). In Arabidopsis thaliana seedlings, this mechanism triggers rapid and massive changes in gene expression, increases auxin production in a SHADE AVOIDANCE 3-dependent manner and promotes hypocotyl elongation. Other components, such as phyA and ELONGATED HYPOCOTYL 5 (HY5), also participate in the shade regulation of the hypocotyl elongation response repressing it. However, it is less clear how phyA and HY5 interact with PIFs to regulate this response. Our physiological, genetic, cell biology and transcriptomic analyses showed that these components are organized in two main branches, and incorporate into the model for the regulation of shade-induced hypocotyl elongation the temporal and spatial functional importance of the various SAS regulators analyzed in here. They also indicated that PIFs and HY5, belonging to separate branches, target common genes whose expression is rapidly modulated by shade. This transcriptional relationship, however, changes after longer shade-treatments, suggesting that it is a dynamic convergence point to modulate the hypocotyl elongation.

plant biology↗

CaMKII binding to GluN2B flips a β-adrenergic switch from synaptic depression to potentiation

Learning, memory and cognition are thought to require forms of synaptic plasticity such as hippocampal long-term potentiation and depression (LTP and LTD), and such plasticity can be modulated by {beta}-adrenergic stimulation with isoproterenol or norepinephrine. For instance, LTP versus LTD is induced by high-versus low-frequency stimulation (HFS versus LFS) but, stimulating {beta}-adrenergic receptors ({beta}ARs) enables LTP induction also by LFS. In contrast to HFS-LTP, such {beta}AR-LTP requires signaling by L-type voltage-gated Ca2+-channels, not NMDA-type glutamate receptors (NMDARs). Surprisingly, we found that {beta}AR-LTP still required a non-ionotropic NMDAR function: the stimulus-induced binding of the Ca2+/calmodulin-dependent protein kinase II (CaMKII) that mediates CaMKII movement to excitatory synapses. In hippocampal neurons, {beta}-adrenergic stimulation with isoproterenol transformed LTD-type CaMKII movement to LTP-type movement, resulting in CaMKII movement to excitatory instead of inhibitory synapses. Additionally, isoproterenol enabled induction of a major cell-biological feature of LTP in response to LTD stimuli: increased SEP-GluA1 surface expression. Like for the {beta}AR-LTP in hippocampal slices, the effects of isoproterenol on CaMKII movement and SEP-GluA1 surface expression involved L-type Ca2+-channels. Taken together, these results indicate that isoproterenol transforms LTD stimuli to LTP signals by switching CaMKII movement and GluN2B binding to LTP mode. One Sentence SummaryBuonarati et al. show that {beta}-adrenergic stimulation enables LTP induction in response to LTD stimuli by switching synaptic CaMKII movement to LTP mode.

neuroscience↗

Gamma-interferon-inducible lysosomal thiol reductase maintains cardiac immuno-metabolic homeostasis in heart failure

BackgroundThe lysosome is a central player in maintaining immuno-metabolic homeostasis. However, mechanistic insights into the regulation of lysosome-dependent immuno-metabolism in the heart are lacking. Lysosomal reductase Gamma Interferon-Inducible Thiol Reductase (GILT) is the only identified lysosomal reductase that controls diverse sets of lysosomal enzymes and cargoes. MethodsThe role of cardiac GILT was assessed by generating a novel genetic mouse model and employing a multidisciplinary approach including surgical interventions, live in situ high resolution microscopy, whole-tissue respirometry analysis, unbiased transcriptomic and metabolomic analyses, and various cell biology and biochemical assays. ResultsWe found that expression and activity of GILT are reduced in hearts from humans and mice with heart failure (HF). Mice with cardiac specific loss of GILT develop late onset systolic HF at baseline. In the setting of nutrient-overload and experimental left ventricular pressure overload conditions, loss of GILT in cardiomyocytes accelerates the development of heart dysfunction. Transcriptomic and metabolic analyses further revealed that cardiac GILT deficiency alters adaptive immuno-metabolic signatures in the heart. Finally, at the cellular level, cardiac GILT deletion impaired mitochondrial respiration, which was in part due to NLR Family Pyrin Domain Containing 3 (NLRP3)-mediated elevation of mitochondrial oxidative stress. ConclusionsTogether, these findings identify a causal link between a lysosome-inflammation axis, mitochondrial function and heart failure. Elucidation of these mechanisms will identify novel therapeutic strategies for treating HF.

molecular biology↗

Afadin and zyxin contribute to coupling between cell junctions and contractile actomyosin networks during apical constriction

One of the most common cell shape changes driving morphogenesis in diverse animals is the constriction of the apical cell surface. Apical constriction depends on contraction of an actomyosin network in the apical cell cortex, but such actomyosin networks have been shown to undergo continual, conveyor belt-like contractions before the shrinking of an apical surface begins. This finding suggests that apical constriction is not necessarily triggered by the contraction of actomyosin networks, but rather can be triggered by unidentified, temporally-regulated mechanical links between actomyosin and junctions. Here, we used C. elegans gastrulation as a model to seek genes that contribute to such dynamic linkage. We found that -catenin and {beta}-catenin initially failed to move centripetally with contracting cortical actomyosin networks, suggesting that linkage is regulated between intact cadherin-catenin complexes and actomyosin. We used proteomic and transcriptomic approaches to identify new players, including the candidate linkers AFD-1/afadin and ZYX-1/zyxin, as contributing to C. elegans gastrulation. We found that ZYX-1/zyxin is among a family of LIM domain proteins that have transcripts that become enriched in multiple cells just before they undergo apical constriction. We developed a semi-automated image analysis tool to describe rates of myosin and membrane movement, which we then used to discover that ZYX-1/zyxin contributes to cell-cell junctions centripetal movement in concert with contracting actomyosin networks. These results identify several new genes that contribute to C. elegans gastrulation, and they identify zyxin as a key protein important for actomyosin networks to effectively pull cell-cell junctions inward during apical constriction. The transcriptional upregulation of ZYX-1/zyxin in specific cells in C. elegans points to one way that developmental patterning spatiotemporally regulates cell biological mechanisms in vivo. Because zyxin and related proteins contribute to membrane-cytoskeleton linkage in other systems, we anticipate that its roles in regulating apical constriction in this manner may be conserved.

genetics↗

Sequence analysis and structural predictions of lipid transfer bridges in the repeating beta groove (RBG) superfamily reveals past and present domain variations affecting form, function and interactions of VPS13, ATG2, SHIP164, Hobbit and Tweek

Lipid transfer between organelles requires proteins that shield the hydrophobic portions of lipids as they cross the cytoplasm. In the last decade a new structural form of lipid transfer protein (LTP) has been found: long hydrophobic grooves made of beta-sheet that bridge between organelles at membrane contact sites. Eukaryotes have five families of bridge-like LTPs: VPS13, ATG2, SHIP164, Hobbit and Tweek. These are unified into a single superfamily through their bridges being composed of just one domain, called the repeating beta groove (RBG) domain, which builds into rod shaped multimers with a hydrophobic-lined groove and hydrophilic exterior. Here, sequences and predicted structures of the RBG superfamily were analyzed in depth. Phylogenetics showed that the last eukaryotic common ancestor contained all five RBG proteins, with duplicate VPS13s. These appear to have arisen in even earlier ancestors from shorter forms with 4 RBG domains. The extreme ends of most RBG proteins have amphipathic helices that might be an adaptation for direct or indirect bilayer interaction, although this has yet to be tested. The one exception to this is the C-terminus of SHIP164, which instead has a coiled-coil. Finally, almost the entire length of the exterior surfaces of the RBG bridges are shown to have conserved residues, indicating sites for partner interactions almost all of which are unknown. These findings can inform future cell biological and biochemical experiments.

bioinformatics↗

An optimised transformation protocol for Anthoceros agrestis and three more hornwort species

Land plants comprise two large monophyletic lineages, the vascular plants and the bryophytes, which diverged from their most recent common ancestor approximately 480 million years ago. Of the three lineages of bryophytes, only the mosses and the liverworts are systematically investigated, while the hornworts are understudied. Despite their importance for understanding fundamental questions of land plant evolution, they only recently became amenable to experimental investigation, with Anthoceros agrestis being developed as a hornwort model system. Availability of a high quality genome assembly and a recently developed genetic transformation technique makes A. agrestis an attractive model species for hornworts. Here we describe an updated and optimised transformation protocol for A. agrestis which can be successfully used to genetically modify one more strain of A. agrestis and three more hornwort species, Anthoceros punctatus, Leiosporoceros dussi and Phaeoceros carolinianus. The new transformation method is less laborious, faster and results in the generation of greatly increased numbers of transformants compared to the previous method. We have also developed a new selection marker for transformation. Finally, we report the development of a set of different cellular localisation signal peptides for hornworts providing new tools to better understand hornwort cell biology.

plant biology↗

Dermal appendage-dependent patterning of zebrafish atoh1a+ Merkel cells

Touch system function requires precise interactions between specialized skin cells and somatosensory axons, as exemplified by the vertebrate mechanosensory Merkel cell-neurite complex. Development and patterning of Merkel cells and associated neurites during skin organogenesis remains poorly understood, partly due to the in utero development of mammalian embryos. Here, we discover Merkel cells in the zebrafish epidermis and identify Atonal homolog 1a (Atoh1a) as a marker of zebrafish Merkel cells. We show that zebrafish Merkel cells derive from basal keratinocytes, express neurosecretory and mechanosensory machinery, extend actin-rich microvilli, and complex with somatosensory axons, all hallmarks of mammalian Merkel cells. Merkel cells populate all major adult skin compartments, with region-specific densities and distribution patterns. In vivo photoconversion reveals that Merkel cells undergo steady loss and replenishment during skin homeostasis. Merkel cells develop concomitant with dermal appendages along the trunk, and preventing dermal appendage formation reduces Merkel cell density by affecting both cell differentiation and maintenance. By contrast, altering dermal appendage morphology changes the distribution, but not density, of Merkel cells. Overall, our studies provide insights into touch system maturation during skin organogenesis and establish zebrafish as an experimentally accessible in vivo model for the study of Merkel cell biology.

developmental biology↗

SEC-seq: Association of molecular signatures with antibody secretion in thousands of single human plasma cells

Protein secretion drives many functions in vivo; however, methods to link secretions with surface markers and transcriptomes have been lacking. By accumulating secretions close to secreting cells held within cavity-containing hydrogel nanovials, we demonstrate workflows to analyze the amount of IgG secreted from single human antibody-secreting cells and link this information to surface marker expression and transcriptional profiles from the same cells. Measurements using flow cytometry and imaging flow cytometry corroborated an association between levels of IgG secretion and CD138 expression. Using oligonucleotide-labeled antibodies and droplet-based sequencing, we show that pathways encoding protein localization to the endoplasmic reticulum, NADH complex assembly, and mitochondrial respiration were most associated with high IgG secretion. Altogether, this method links secretion information to cell surface and single-cell sequencing information (SEC-seq) and enables exploration of links between genome and secretory function, laying the foundation for numerous discoveries in immunology, stem cell biology, and beyond.

bioengineering↗

Structural studies reveal that endosomal cations promote formation of infectious CVA9 A particles, facilitating RNA and VP4 release.

Coxsackievirus A9, an enterovirus, is a common cause of paediatric aseptic meningitis and neonatal sepsis. During cell entry, enterovirus capsids undergo conformational changes leading to expansion, formation of large pores, externalization of VP1 N-termini and loss of the lipid factor from VP1. Factors such as receptor binding, heat, and acidic pH can trigger capsid expansion in some enteroviruses. Here we show that fatty-acid free bovine serum albumin or neutral endosomal ionic conditions can independently prime CVA9 for expansion and genome release. Our results show that CVA9 treatment with albumin or endosomal ions generates a heterogeneous population of virions, which could be physically separated by asymmetric flow field flow fractionation and computationally by cryo-EM and image processing. We report cryo-EM structures of CVA9 A-particles obtained by albumin or endosomal ion treatment and a control non-expanded virion to 3.5, 3.3 and 2.9 [A] resolutions, respectively. Where albumin promotes stabile expanded virions, the endosomal ionic concentrations induce unstable CVA9 virions which easily disintegrate losing their genome. Loss of most of the VP4 molecules and exposure of negatively-charged amino acid residues in the capsids interior after expansion, create a repulsive viral RNA-capsid interface, aiding genome release. ImportanceCoxsackievirus A9 (CVA9) is a common cause of meningitis and neonatal sepsis. The triggers and mode of action of RNA release into the cell unusually do not require receptor interaction. Rather, a slow process in the endosome, independent of low pH is required. Here, we show by biophysical separation, cryogenic electron microscopy and image reconstruction that albumin and buffers mimicking the endosomal ion composition can separately and together expand and prime CVA9 for uncoating. Furthermore, we show in these expanded particles that VP4 is present at only ~10% of the occupancy found in the virion, VP1 is externalised and the genome is repelled by the negatively-charged, repulsive inner surface of the capsid that occurs due to the expansion. Thus, we can now link observations from cell biology of infection with the physical processes that occur in the capsid to promote genome uncoating.

microbiology↗

Organization and regulation of nuclear condensates by gene activity

Condensation by phase separation has recently emerged as a mechanism underlying many nuclear compartments essential for cellular functions. Nuclear condensates enrich nucleic acids and proteins, localize to specific genomic regions, and often promote gene expression. How diverse properties characteristic of nuclear condensates are shaped by genome organization and activity is poorly understood. Here, we develop a physics-based model to interrogate this interplay between condensation, active transcription, and genome organization. We show that spatial clustering of active genes enables precise localization and de novo nucleation of condensates. We find that strong clustering and activity drives aspherical condensate morphologies. Condensates flow towards distant gene clusters and competition between multiple clusters lead to stretched morphologies and activity-dependent repositioning. Overall, our model predicts and recapitulates morphological and dynamical features of diverse nuclear condensates and offers a unified mechanistic framework to study the interplay between non-equilibrium processes, genome structure, and multicomponent condensates in cell biology.

biophysics↗

Effects of microtubule length and crowding on active microtubule network organization

Active filament networks can organize into various dynamic architectures driven by crosslinking motors. Densities and kinetic properties of motors and microtubules have been shown previously to determine active microtubule network self-organization, but the effects of other control parameters are less understood. Using computer simulations, we study here how microtubule lengths and crowding effects determine active network architecture and dynamics. We find that attractive interaction mimicking crowding effects or long microtubules both promote the formation of nematic networks of extensile bundles instead of contractile networks. When microtubules are very long and the network is highly percolated, a new isotropically motile network state resembling a crawling mesh is predicted. Using in vitro reconstitutions, we confirm the existence of this crawling mesh experimentally. These results provide a better understanding of how active microtubule network organization can be controlled, with implications for cell biology and active materials in general.

biophysics↗

Disruptions in cell fate decisions and transformed enteroendocrine cells drive intestinal tumorigenesis in Drosophila.

Most epithelial tissues are maintained by stem cells that produce the different cell lineages required for proper tissue function. Constant communication between different cell types that make up a tissue is essential to ensure that all cell lineages are produced at appropriate numbers and to mount regenerative responses to injury, infection, and other environmental stresses. Cancer-driving alterations change the intrinsic properties of transformed cells and disrupt stem cell regulation, cell fate decisions, and cell-cell communication within transformed tissue. However, mechanisms by which these processes are disrupted and co-opted to support tumorigenesis are not well understood. Here, we report a novel genetic platform, PromoterSwitch, that allows targeting of genetic manipulations to a small subset of cells of any tissue or cell type of interest and all their subsequent progeny. We use this technology to generate large, transformed clones derived from individual stem/progenitor cells in the adult Drosophila intestine. We show that cancer-driving genetic alterations representing common colon tumor genome landscapes drive disruptions in cell fate decisions within transformed clones and changes in the relative abundance of different intestinal cell lineages. We also uncover a critical, context-dependent role for the differentiated, hormone-producing enteroendocrine (EE) cells in the growth and maintenance of transformed clones. Our analysis in different genetic contexts provides insights into how the intrinsic properties of transformed cells --dictated by the genetic alterations they carry-- determine their response to their environment and dependence on niche signals. A better mechanistic understanding of disruptions of cell-cell communication, stem cell regulation, and cell fate decisions within tumors could reveal novel vulnerabilities and druggable regulatory nodes that can be exploited for therapy. Understanding how tissues respond to the emergence of cells with cancer-driving genetic alterations also provides insights into stem cell biology and epithelial homeostasis.

cancer biology↗

Endogenous GFP tagging in the diatom Thalassiosira pseudonana

The regulated abundance and spatial distribution of proteins determines cellular structure and function. The discovery of green fluorescent protein (GFP) and fusing it to a target protein to determine subcellular localization revolutionized cell biology. Most localization studies involve introducing additional copies of a target gene genetically fused to GFP and under the control of a constitutive promoter, resulting in the expression of the GFP-fusion protein at non-native levels. Here we have developed a single vector CRISPR/Cas9 guided GFP knock-in strategy in the diatom Thalassiosira pseudonana. This enables precise and scarless knock-in of GFP at the endogenous genomic location to create GFP fusion proteins under their native cis and trans regulatory elements with knock-in efficiencies of over 50%. We show that a previously uncharacterized bestrophin-like protein localizes to the CO2-fixing pyrenoid and demonstrate that by measuring GFP fluorescence we can track relative protein abundance in response to environmental change. To enable endogenous tagging, we developed a Golden Gate Molecular Cloning system for the rapid assembly of episomes for transformation into Thalassiosira pseudonana via bacterial conjugation. In addition, this versatile toolbox enables CRISPR/Cas9 gene editing, provides a broad range of validated fluorophores and enables future large-scale functional studies in diatoms. Significance statementFluorescent protein (FP) tagging is a widely utilized technique for understanding the spatial distribution of proteins. However, introducing extra gene copies under constitutive promoters that randomly integrate into the genome can result in non-biologically relevant expression levels, unwanted genomic mutations and localization artefacts. To overcome this, we developed a novel single vector system capable of CRISPR/Cas9-guided endogenous GFP tagging in a globally important model diatom. This allows scarless GFP knock-in at precise genomic locations resulting in GFP fusions regulated by native promoters/terminators, which facilitates accurate localization and determination of relative protein abundance. Moreover, the developed modular cloning framework is user-friendly and opens the door for high throughput large-scale studies, including FP tagging, knock-out, and knock-in.

plant biology↗

Self-Assembly Coupled to Liquid-Liquid Phase Separation

Liquid condensate droplets with distinct compositions of proteins and nucleic acids are widespread in biological cells. While it is known that such droplets can regulate irreversible protein aggregation, their effect on reversible self-assembly remains largely unexplored. In this article, we use kinetic theory and solution thermodynamics to investigate the effect of liquid-liquid phase separation on the reversible self-assembly of structures with well-defined sizes and architectures. We find that when assembling subunits preferentially partition into liquid domains, robustness against kinetic traps and maximum achievable assembly rates can be significantly increased. In particular, the range of solution conditions over which productive assembly and the corresponding assembly rates can increase by orders of magnitude. We analyze the rate equation predictions using simple scaling estimates to identify effect of liquid-liquid phase separation as a function of relevant control parameters. These results may elucidate self-assembly processes that underlie normal cellular functions or pathogenesis, and suggest strategies for designing efficient bottom-up assembly for nanomaterials applications.

biophysics↗

Ribozyme-phenotype coupling in peptide-based coacervate protocells

Condensed coacervate phases are now understood to be important features of modern cell biology, as well as valuable protocellular models in origin of life studies and synthetic biology. In each of these fields, the development of model systems with varied and tuneable material properties is of great importance for replicating properties of life. Here, we develop a ligase ribozyme system capable of concatenating short RNA fragments into extremely long chains. Our results show that formation of coacervate microdroplets with the ligase ribozyme and poly(L-lysine) enhances ribozyme rate and yield, which in turn increases the length of the anionic polymer component of the system and imparts specific physical properties to the droplets. Droplets containing active ribozyme sequences resist growth, do not wet or spread on unpassivated surfaces, and exhibit reduced transfer of RNA between droplets when compared to controls containing inactive sequences. These altered behaviours, which stem from RNA sequence and catalytic activity, constitute a specific phenotype and potential fitness advantage, opening the door to selection and evolution experiments based on a genotype - phenotype linkage.

synthetic biology↗

Optogenetic manipulation of second messengers in neurons and cardiomyocytes with microbial rhodopsins and adenylyl cyclase

Even though microbial photosensitive proteins have been used for optogenetics, their use should be optimized to precisely control second messengers in vivo. We exploited GtCCR4 and KnChR, cation channelrhodopsins from algae, BeGC1, a guanylyl cyclase rhodopsin from a fungus, and photoactivated adenylyl cyclases (PACs) from cyanobacteria (OPAC) or bacteria (bPAC), to control cell functions in zebrafish. Optical activation of GtCCR4 and KnChR in the hindbrain reticulospinal V2a neurons, which are involved in locomotion, immediately induced swimming behavior, whereas activation of BeGC1 or PACs was achieved at a short latency. KnChR had the highest locomotioninducing activity of all the channelrhodopsins examined. Activation of GtCCR4 and KnChR in cardiomyocytes induced cardiac arrest, whereas activation of bPAC gradually induced bradycardia. KnChR activation led to an increase in intracellular Ca2+ in the heart, suggesting that depolarization caused cardiac arrest. These data suggest that these optogenetic tools can be used to reveal the roles of second messengers in various cell types in vertebrates. Impact statementWe identified efficient and useful microbial channelrhodopsin, guanylyl cyclase rhodopsin, and photoactivated adenylyl cyclase that regulate neural activity and cardiac function in zebrafish. Major subject areasNeuroscience, Cell biology Research organismZebrafish (Danio rerio)

neuroscience↗

Nonlinear microscale mechanics of actin networks governed by coupling of filament crosslinking and stabilization

Actin plays a vital role in maintaining the stability and rigidity of biological cells while allowing for cell motility and shape change. The semiflexible nature of actin filaments - along with the myriad actin-binding proteins (ABPs) that serve to crosslink, bundle, and stabilize filaments - are central to this multifunctionality. The effect of ABPs on the structural and mechanical properties of actin network mechanics has been the topic of fervent investigation over the past few decades, revealing diverse structures from isotropic percolated networks to heterogeneous bundles that depend on the crosslinker type and concentration. Yet, the impact of filament stabilization and stiffening via ABPs on the nonlinear response of crosslinked networks has yet to be explored. Here, we perform optical tweezers microheology measurements to characterize the nonlinear force response and relaxation dynamics of actin networks in the presence of varying concentrations of -actinin, which transiently crosslinks actin filaments, and phalloidin, which stabilizes filamentous actin and increases its persistence length. We show that crosslinking and stabilization can act both synergistically and antagonistically to tune the network resistance to nonlinear straining. For example, phalloidin-stabilization leads to enhanced elastic response and reduced dissipation at large strains and timescales, while the initial microscale force response is reduced compared to networks without phalloidin. Moreover, we find that stabilization switches this initial response from that of stress-stiffening to softening despite the increased filament stiffness that phalloidin confers. Finally, we show that both crosslinking and stabilization are necessary to elicit these emergent features, while the effect of stabilization on networks without crosslinkers is much more subdued. We suggest that these intriguing mechanical properties arise from the competition and cooperation between filament connectivity, bundling, and rigidification, shedding light on how ABPs with distinct roles can act in concert to mediate diverse mechanical properties of the cytoskeleton and bio-inspired polymeric materials.

biophysics↗