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1.
Development ; 151(13)2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38869008

ABSTRACT

Cofilin, an actin-severing protein, plays key roles in muscle sarcomere addition and maintenance. Our previous work found that Drosophila cofilin (DmCFL) knockdown in muscle causes progressive deterioration of muscle structure and function and produces features seen in nemaline myopathy caused by cofilin mutations. We hypothesized that disruption of actin cytoskeleton dynamics by DmCFL knockdown would impact other aspects of muscle development, and, thus, conducted an RNA-sequencing analysis that unexpectedly revealed upregulated expression of numerous neuromuscular junction (NMJ) genes. We found that DmCFL is enriched in the muscle postsynaptic compartment and that DmCFL muscle knockdown causes F-actin disorganization in this subcellular domain prior to the sarcomere defects observed later in development. Despite NMJ gene expression changes, we found no significant changes in gross presynaptic Bruchpilot active zones or total postsynaptic glutamate receptor levels. However, DmCFL knockdown resulted in mislocalization of GluRIIA class glutamate receptors in more deteriorated muscles and strongly impaired NMJ transmission strength. These findings expand our understanding of the roles of cofilin in muscle to include NMJ structural development and suggest that NMJ defects may contribute to the pathophysiology of nemaline myopathy.


Subject(s)
Drosophila Proteins , Drosophila melanogaster , Neuromuscular Junction , Synaptic Transmission , Animals , Neuromuscular Junction/metabolism , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Drosophila melanogaster/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/growth & development , Actin Depolymerizing Factors/metabolism , Actin Depolymerizing Factors/genetics , Actins/metabolism , Sarcomeres/metabolism , Gene Knockdown Techniques , Actin Cytoskeleton/metabolism , Myopathies, Nemaline/metabolism , Myopathies, Nemaline/genetics , Myopathies, Nemaline/pathology
2.
Neurobiol Dis ; 198: 106558, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38852754

ABSTRACT

Periventricular nodular heterotopia (PNH), the most common brain malformation diagnosed in adulthood, is characterized by the presence of neuronal nodules along the ventricular walls. PNH is mainly associated with mutations in the FLNA gene - encoding an actin-binding protein - and patients often develop epilepsy. However, the molecular mechanisms underlying the neuronal failure still remain elusive. It has been hypothesized that dysfunctional cortical circuitry, rather than ectopic neurons, may explain the clinical manifestations. To address this issue, we depleted FLNA from cortical pyramidal neurons of a conditional Flnaflox/flox mice by timed in utero electroporation of Cre recombinase. We found that FLNA regulates dendritogenesis and spinogenesis thus promoting an appropriate excitatory/inhibitory inputs balance. We demonstrated that FLNA modulates RAC1 and cofilin activity through its interaction with the Rho-GTPase Activating Protein 24 (ARHGAP24). Collectively, we disclose an uncharacterized role of FLNA and provide strong support for neural circuit dysfunction being a consequence of FLNA mutations.


Subject(s)
Cerebral Cortex , Filamins , rac1 GTP-Binding Protein , Animals , Mice , Actin Depolymerizing Factors/metabolism , Cerebral Cortex/metabolism , Filamins/metabolism , Filamins/genetics , GTPase-Activating Proteins/metabolism , GTPase-Activating Proteins/genetics , Mice, Transgenic , Neurogenesis/physiology , Neurons/metabolism , Neuropeptides/metabolism , Neuropeptides/genetics , Periventricular Nodular Heterotopia/genetics , Periventricular Nodular Heterotopia/metabolism , Periventricular Nodular Heterotopia/pathology , Pyramidal Cells/metabolism , rac1 GTP-Binding Protein/metabolism , rac1 GTP-Binding Protein/genetics
3.
J Phys Chem B ; 128(19): 4590-4601, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38701111

ABSTRACT

Cofilin, a key actin-binding protein, orchestrates the dynamics of the actomyosin network through its actin-severing activity and by promoting the recycling of actin monomers. Recent experiments suggest that cofilin forms functionally distinct oligomers via thiol post-translational modifications (PTMs) that promote actin nucleation and assembly. Despite these advances, the structural conformations of cofilin oligomers that modulate actin activity remain elusive because there are combinatorial ways to oxidize thiols in cysteines to form disulfide bonds rapidly. This study employs molecular dynamics simulations to investigate human cofilin 1 as a case study for exploring cofilin dimers via disulfide bond formation. Utilizing a biasing scheme in simulations, we focus on analyzing dimer conformations conducive to disulfide bond formation. Additionally, we explore potential PTMs arising from the examined conformational ensemble. Using the free energy profiling, our simulations unveil a range of probable cofilin dimer structures not represented in current Protein Data Bank entries. These candidate dimers are characterized by their distinct population distributions and relative free energies. Of particular note is a dimer featuring an interface between cysteines 139 and 147 residues, which demonstrates stable free energy characteristics and intriguingly symmetrical geometry. In contrast, the experimentally proposed dimer structure exhibits a less stable free energy profile. We also evaluate frustration quantification based on the energy landscape theory in the protein-protein interactions at the dimer interfaces. Notably, the 39-39 dimer configuration emerges as a promising candidate for forming cofilin tetramers, as substantiated by frustration analysis. Additionally, docking simulations with actin filaments further evaluate the stability of these cofilin dimer-actin complexes. Our findings thus offer a computational framework for understanding the role of thiol PTM of cofilin proteins in regulating oligomerization, and the subsequent cofilin-mediated actin dynamics in the actomyosin network.


Subject(s)
Actin Cytoskeleton , Disulfides , Molecular Dynamics Simulation , Disulfides/chemistry , Humans , Actin Cytoskeleton/chemistry , Actin Cytoskeleton/metabolism , Cofilin 1/chemistry , Cofilin 1/metabolism , Protein Multimerization , Actins/chemistry , Actins/metabolism , Actin Depolymerizing Factors/chemistry , Actin Depolymerizing Factors/metabolism , Thermodynamics
4.
Eur J Cell Biol ; 103(2): 151423, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38796920

ABSTRACT

Intracellular actin networks assemble through the addition of ATP-actin subunits at the growing barbed ends of actin filaments. This is followed by "aging" of the filament via ATP hydrolysis and subsequent phosphate release. Aged ADP-actin subunits thus "treadmill" through the filament before being released back into the cytoplasmic monomer pool as a result of depolymerization at filament pointed ends. The necessity for aging before filament disassembly is reinforced by preferential binding of cofilin to aged ADP-actin subunits over newly-assembled ADP-Pi actin subunits in the filament. Consequently, investigations into how cofilin influences pointed-end depolymerization have, thus far, focused exclusively on aged ADP-actin filaments. Using microfluidics-assisted Total Internal Reflection Fluorescence (mf-TIRF) microscopy, we reveal that, similar to their effects on ADP filaments, cofilin and cyclase-associated protein (CAP) also promote pointed-end depolymerization of ADP-Pi filaments. Interestingly, the maximal rates of ADP-Pi filament depolymerization by CAP and cofilin together remain approximately 20-40 times lower than for ADP filaments. Further, we find that the promotion of ADP-Pi pointed-end depolymerization is conserved for all three mammalian cofilin isoforms. Taken together, the mechanisms presented here open the possibility of newly-assembled actin filaments being directly disassembled from their pointed-ends, thus bypassing the slow step of Pi release in the aging process.


Subject(s)
Actin Cytoskeleton , Actins , Actin Cytoskeleton/metabolism , Animals , Actins/metabolism , Actin Depolymerizing Factors/metabolism , Adenosine Diphosphate/metabolism , Rabbits , Mice , Polymerization , Cofilin 1/metabolism
5.
J Biol Chem ; 300(5): 107279, 2024 May.
Article in English | MEDLINE | ID: mdl-38588808

ABSTRACT

Actin bundling proteins crosslink filaments into polarized structures that shape and support membrane protrusions including filopodia, microvilli, and stereocilia. In the case of epithelial microvilli, mitotic spindle positioning protein (MISP) is an actin bundler that localizes specifically to the basal rootlets, where the pointed ends of core bundle filaments converge. Previous studies established that MISP is prevented from binding more distal segments of the core bundle by competition with other actin-binding proteins. Yet whether MISP holds a preference for binding directly to rootlet actin remains an open question. By immunostaining native intestinal tissue sections, we found that microvillar rootlets are decorated with the severing protein, cofilin, suggesting high levels of ADP-actin in these structures. Using total internal reflection fluorescence microscopy assays, we also found that purified MISP exhibits a binding preference for ADP- versus ADP-Pi-actin-containing filaments. Consistent with this, assays with actively growing actin filaments revealed that MISP binds at or near their pointed ends. Moreover, although substrate attached MISP assembles filament bundles in parallel and antiparallel configurations, in solution MISP assembles parallel bundles consisting of multiple filaments exhibiting uniform polarity. These discoveries highlight nucleotide state sensing as a mechanism for sorting actin bundlers along filaments and driving their accumulation near filament ends. Such localized binding might drive parallel bundle formation and/or locally modulate bundle mechanical properties in microvilli and related protrusions.


Subject(s)
Actins , Animals , Actin Cytoskeleton/metabolism , Actin Depolymerizing Factors/metabolism , Actins/metabolism , Adenosine Diphosphate/metabolism , Cell Cycle Proteins/metabolism , Microfilament Proteins/metabolism , Microvilli/metabolism , Protein Binding
6.
Mol Cell Neurosci ; 129: 103921, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38428552

ABSTRACT

Synapses change their weights in response to neuronal activity and in turn, neuronal networks alter their response properties and ultimately allow the brain to store information as memories. As for memories, not all events are maintained over time. Maintenance of synaptic plasticity depends on the interplay between functional changes at synapses and the synthesis of plasticity-related proteins that are involved in stabilizing the initial functional changes. Different forms of synaptic plasticity coexist in time and across the neuronal dendritic area. Thus, homosynaptic plasticity refers to activity-dependent synaptic modifications that are input-specific, whereas heterosynaptic plasticity relates to changes in non-activated synapses. Heterosynaptic forms of plasticity, such as synaptic cooperation and competition allow neurons to integrate events that occur separated by relatively large time windows, up to one hour. Here, we show that activation of Cdc42, a Rho GTPase that regulates actin cytoskeleton dynamics, is necessary for the maintenance of long-term potentiation (LTP) in a time-dependent manner. Inhibiting Cdc42 activation does not alter the time-course of LTP induction and its initial expression but blocks its late maintenance. We show that Cdc42 activation is involved in the phosphorylation of cofilin, a protein involved in modulating actin filaments and that weak and strong synaptic activation leads to similar levels on cofilin phosphorylation, despite different levels of LTP expression. We show that Cdc42 activation is required for synapses to interact by cooperation or competition, supporting the hypothesis that modulation of the actin cytoskeleton provides an activity-dependent and time-restricted permissive state of synapses allowing synaptic plasticity to occur. We found that under competition, the sequence in which synapses are activated determines the degree of LTP destabilization, demonstrating that competition is an active destabilization process. Taken together, we show that modulation of actin cytoskeleton by Cdc42 activation is necessary for the expression of homosynaptic and heterosynaptic forms of plasticity. Determining the temporal and spatial rules that determine whether synapses cooperate or compete will allow us to understand how memories are associated.


Subject(s)
Long-Term Potentiation , Synapses , cdc42 GTP-Binding Protein , cdc42 GTP-Binding Protein/metabolism , Animals , Long-Term Potentiation/physiology , Synapses/metabolism , Synapses/physiology , Phosphorylation , Neuronal Plasticity/physiology , Rats , Hippocampus/metabolism , Hippocampus/physiology , Hippocampus/cytology , Actin Depolymerizing Factors/metabolism , Neurons/metabolism , Neurons/physiology , Male
7.
Structure ; 32(6): 725-738.e8, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38518780

ABSTRACT

Entry of Salmonella into host enterocytes relies on its pathogenicity island 1 effector SipA. We found that SipA binds to F-actin in a 1:2 stoichiometry with sub-nanomolar affinity. A cryo-EM reconstruction revealed that SipA's globular core binds at the groove between actin strands, whereas the extended C-terminal arm penetrates deeply into the inter-strand space, stabilizing F-actin from within. The unusually strong binding of SipA is achieved by a combination of fast association via the core and very slow dissociation dictated by the arm. Similar to Pi, BeF3, and phalloidin, SipA potently inhibited actin depolymerization by actin depolymerizing factor (ADF)/cofilin, which correlated with increased filament stiffness, supporting the hypothesis that F-actin's mechanical properties contribute to the recognition of its nucleotide state by protein partners. The remarkably strong binding to F-actin maximizes the toxin's effects at the injection site while minimizing global influence on the cytoskeleton and preventing pathogen detection by the host cell.


Subject(s)
Actins , Bacterial Proteins , Phalloidine , Phosphates , Protein Binding , Actins/metabolism , Actins/chemistry , Phalloidine/metabolism , Phalloidine/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Phosphates/metabolism , Phosphates/chemistry , Cryoelectron Microscopy , Models, Molecular , Binding Sites , Humans , Actin Depolymerizing Factors/metabolism , Actin Depolymerizing Factors/chemistry , Salmonella typhimurium/metabolism , Microfilament Proteins
8.
Am J Respir Cell Mol Biol ; 70(6): 507-518, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38512807

ABSTRACT

Airway remodeling is a cardinal feature of asthma, associated with increased airway smooth muscle (ASM) cell mass and upregulation of extracellular matrix deposition. Exaggerated ASM cell migration contributes to excessive ASM mass. Previously, we demonstrated the alleviating role of Kp (kisspeptin) receptor (KISS1R) activation by Kp-10 in mitogen (PDGF [platelet-derived growth factor])-induced human ASM cell proliferation in vitro and airway remodeling in vivo in a mouse model of asthma. Here, we examined the mechanisms by which KISS1R activation regulates mitogen-induced ASM cell migration. KISS1R activation using Kp-10 significantly inhibited PDGF-induced ASM cell migration, further confirmed using KISS1R shRNA. Furthermore, KISS1R activation modulated F/G actin dynamics and the expression of promigration proteins like CDC42 (cell division control protein 42) and cofilin. Mechanistically, we observed reduced ASM RhoA-GTPAse with KISS1R activation. The antimigratory effect of KISS1R was abolished by PKA (protein kinase A)-inhibitory peptide. Conversely, KISS1R activation significantly increased cAMP and phosphorylation of CREB (cAMP-response element binding protein) in PDGF-exposed ASM cells. Overall, these results highlight the alleviating properties of Kp-10 in the context of airway remodeling.


Subject(s)
Cell Movement , Kisspeptins , Myocytes, Smooth Muscle , Platelet-Derived Growth Factor , Receptors, Kisspeptin-1 , Signal Transduction , rhoA GTP-Binding Protein , Humans , Cell Movement/drug effects , Myocytes, Smooth Muscle/metabolism , Myocytes, Smooth Muscle/drug effects , Kisspeptins/metabolism , Platelet-Derived Growth Factor/metabolism , Platelet-Derived Growth Factor/pharmacology , Receptors, Kisspeptin-1/metabolism , Receptors, Kisspeptin-1/genetics , rhoA GTP-Binding Protein/metabolism , Receptors, G-Protein-Coupled/metabolism , cdc42 GTP-Binding Protein/metabolism , Airway Remodeling , Cyclic AMP/metabolism , Cyclic AMP-Dependent Protein Kinases/metabolism , Cells, Cultured , Actin Depolymerizing Factors/metabolism , Actins/metabolism , Cell Proliferation
10.
J Cell Biol ; 223(6)2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38497788

ABSTRACT

Actin filament turnover plays a central role in shaping actin networks, yet the feedback mechanism between network architecture and filament assembly dynamics remains unclear. The activity of ADF/cofilin, the main protein family responsible for filament disassembly, has been mainly studied at the single filament level. This study unveils that fascin, by crosslinking filaments into bundles, strongly slows down filament disassembly by cofilin. We show that this is due to a markedly slower initiation of the first cofilin clusters, which occurs up to 100-fold slower on large bundles compared with single filaments. In contrast, severing at cofilin cluster boundaries is unaffected by fascin bundling. After the formation of an initial cofilin cluster on a filament within a bundle, we observed the local removal of fascin. Notably, the formation of cofilin clusters on adjacent filaments is highly enhanced, locally. We propose that this interfilament cooperativity arises from the local propagation of the cofilin-induced change in helicity from one filament to the other filaments of the bundle. Overall, taking into account all the above reactions, we reveal that fascin crosslinking slows down the disassembly of actin filaments by cofilin. These findings highlight the important role played by crosslinkers in tuning actin network turnover by modulating the activity of other regulatory proteins.


Subject(s)
Actin Depolymerizing Factors , Actins , Carrier Proteins , Microfilament Proteins , Actin Cytoskeleton , Actin Depolymerizing Factors/metabolism , Actins/metabolism , Carrier Proteins/metabolism , Cytoskeleton , Microfilament Proteins/metabolism , Humans , Animals
11.
Nat Commun ; 15(1): 1949, 2024 Mar 02.
Article in English | MEDLINE | ID: mdl-38431632

ABSTRACT

Cell division is completed by the abscission of the intercellular bridge connecting the daughter cells. Abscission requires the polymerization of an ESCRT-III cone close to the midbody to both recruit the microtubule severing enzyme spastin and scission the plasma membrane. Here, we found that the microtubule and the membrane cuts are two separate events that are regulated differently. Using HeLa cells, we uncovered that the F-actin disassembling protein Cofilin-1 controls the disappearance of a transient pool of branched F-actin which is precisely assembled at the tip of the ESCRT-III cone shortly before the microtubule cut. Functionally, Cofilin-1 and Arp2/3-mediated branched F-actin favor abscission by promoting local severing of the microtubules but do not participate later in the membrane scission event. Mechanistically, we propose that branched F-actin functions as a physical barrier that limits ESCRT-III cone elongation and thereby favors stable spastin recruitment. Our work thus reveals that F-actin controls the timely and local disassembly of microtubules required for cytokinetic abscission.


Subject(s)
Actins , Microtubules , Humans , Actins/metabolism , HeLa Cells , Spastin/metabolism , Microtubules/metabolism , Cytokinesis , Endosomal Sorting Complexes Required for Transport/metabolism , Actin Depolymerizing Factors/metabolism
12.
Biol Open ; 13(2)2024 Feb 15.
Article in English | MEDLINE | ID: mdl-38299702

ABSTRACT

Mouse monoclonal 12E8 antibody, which recognises conserved serine phosphorylated KXGS motifs in the microtubule binding domains of tau/tau-like microtubule associated proteins (MAPs), shows elevated binding in brain during normal embryonic development (mammals and birds) and at the early stages of human Alzheimer's disease (AD). It also labels ADF/cofilin-actin rods that form in neurites during exposure to stressors. We aimed to identify direct and indirect 12E8 binding proteins in postnatal mouse brain and embryonic chick brain by immunoprecipitation (IP), mass spectrometry and immunofluorescence. Tau and/or MAP2 were major direct 12E8-binding proteins detected in all IPs, and actin and/or tubulin were co-immunoprecipitated in most samples. Additional proteins were different in mouse versus chick brain IP. In mouse brain IPs, FSD1l and intermediate filament proteins - vimentin, α-internexin, neurofilament polypeptides - were prominent. Immunofluorescence and immunoblot using recombinant intermediate filament subunits, suggests an indirect interaction of these proteins with the 12E8 antibody. In chick brain IPs, subunits of eukaryotic translation initiation factor 3 (EIF3) were found, but no direct interaction between 12E8 and recombinant Eif3e protein was detected. Fluorescence microscopy in primary cultured chick neurons showed evidence of co-localisation of Eif3e and tubulin labelling, consistent with previous data demonstrating cytoskeletal organisation of the translation apparatus. Neither total tau or MAP2 immunolabelling accumulated at ADF/cofilin-actin rods generated in primary cultured chick neurons, and we were unable to narrow down the major antigen recognised by 12E8 antibody on ADF/cofilin-actin rods.


Subject(s)
Actins , Microtubule-Associated Proteins , Mice , Animals , Humans , Microtubule-Associated Proteins/metabolism , Actins/metabolism , Actin Depolymerizing Factors/metabolism , Tubulin/metabolism , Brain/metabolism , Carrier Proteins/metabolism , Mammals/metabolism
13.
CNS Neurosci Ther ; 30(2): e14585, 2024 02.
Article in English | MEDLINE | ID: mdl-38421133

ABSTRACT

INTRODUCTION: Serum response factor (SRF) is important in muscle development, tissue repair, and neuronal regulation. OBJECTIVES: This research aims to thoroughly examine the effects of SRF on spinal cord injury (SCI) and its ability to significantly impact the recovery and regeneration of neuronal axons. METHODS: The researchers created rat models of SCI and scratch injury to primary spinal cord neurons to observe the expression of relevant factors after neuronal injury. RESULTS: We found that the SRF, Ras, Raf, and cofilin levels increased after injury and gradually returned to normal levels. Afterward, researchers gave rats with SCI an SRF inhibitor (CCG1423) and studied the effects with nuclear magnetic resonance and transmission electron microscopy. The SRF inhibitor rodents had worse spinal cord recovery and axon regrowth than the control group. And the apoptosis of primary neurons after scratch injury was significantly higher in the SRF inhibitor group. Additionally, the researchers utilized lentiviral transfection to modify the SRF expression in neurons. SRF overexpression increased neuron migration while silencing SRF decreased it. Finally, Western blotting and RT-PCR were conducted to examine the expression changes of related factors upon altering SRF expression. The results revealed SRF overexpression increased Ras, Raf, and cofilin expression. Silencing SRF decreased Ras, Raf, and Cofilin expression. CONCLUSION: Based on our research, the SRF promotes axonal regeneration by activating the "Ras-Raf-Cofilin" signaling pathway.


Subject(s)
Actin Depolymerizing Factors , Spinal Cord Injuries , Rats , Animals , Actin Depolymerizing Factors/metabolism , Actin Depolymerizing Factors/pharmacology , Serum Response Factor/genetics , Serum Response Factor/metabolism , Serum Response Factor/pharmacology , Spinal Cord Injuries/pathology , Neurons/metabolism , Axons , Spinal Cord/metabolism , Signal Transduction , Nerve Regeneration , Recovery of Function/physiology
14.
Cell Rep ; 43(3): 113866, 2024 Mar 26.
Article in English | MEDLINE | ID: mdl-38416638

ABSTRACT

To mount an adaptive immune response, dendritic cells must migrate to lymph nodes to present antigens to T cells. Critical to 3D migration is the nucleus, which is the size-limiting barrier for migration through the extracellular matrix. Here, we show that inflammatory activation of dendritic cells leads to the nucleus becoming spherically deformed and enables dendritic cells to overcome the typical 2- to 3-µm diameter limit for 3D migration through gaps in the extracellular matrix. We show that the nuclear shape change is partially attained through reduced cell adhesion, whereas improved 3D migration is achieved through reprogramming of the actin cytoskeleton. Specifically, our data point to a model whereby the phosphorylation of cofilin-1 at serine 41 drives the assembly of a cofilin-actomyosin ring proximal to the nucleus and enhances migration through 3D collagen gels. In summary, these data describe signaling events through which dendritic cells deform their nucleus and enhance their migratory capacity.


Subject(s)
Actin Depolymerizing Factors , Actomyosin , Actin Depolymerizing Factors/metabolism , Cell Movement/physiology , Actomyosin/metabolism , Cytokinesis , Cofilin 1/metabolism , Extracellular Matrix/metabolism , Dendritic Cells/metabolism
15.
Nat Commun ; 15(1): 1426, 2024 Feb 16.
Article in English | MEDLINE | ID: mdl-38365893

ABSTRACT

Cofilin family proteins have essential roles in remodeling the cytoskeleton through filamentous actin depolymerization and severing. The short, unstructured N-terminal region of cofilin is critical for actin binding and harbors the major site of inhibitory phosphorylation. Atypically for a disordered sequence, the N-terminal region is highly conserved, but specific aspects driving this conservation are unclear. Here, we screen a library of 16,000 human cofilin N-terminal sequence variants for their capacity to support growth in S. cerevisiae in the presence or absence of the upstream regulator LIM kinase. Results from the screen and biochemical analysis of individual variants reveal distinct sequence requirements for actin binding and regulation by LIM kinase. LIM kinase recognition only partly explains sequence constraints on phosphoregulation, which are instead driven to a large extent by the capacity for phosphorylation to inactivate cofilin. We find loose sequence requirements for actin binding and phosphoinhibition, but collectively they restrict the N-terminus to sequences found in natural cofilins. Our results illustrate how a phosphorylation site can balance potentially competing sequence requirements for function and regulation.


Subject(s)
Actins , Cofilin 1 , Humans , Actin Cytoskeleton/metabolism , Actin Depolymerizing Factors/metabolism , Actins/metabolism , Cofilin 1/genetics , Cofilin 1/metabolism , Lim Kinases/metabolism , Phosphorylation , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism
16.
Nat Commun ; 15(1): 1282, 2024 Feb 12.
Article in English | MEDLINE | ID: mdl-38346956

ABSTRACT

TNF acts as one pathogenic driver for inducing intestinal epithelial cell (IEC) death and substantial intestinal inflammation. How the IEC death is regulated to physiologically prevent intestinal inflammation needs further investigation. Here, we report that EF-hand domain-containing protein D2 (EFHD2), highly expressed in normal intestine tissues but decreased in intestinal biopsy samples of ulcerative colitis patients, protects intestinal epithelium from TNF-induced IEC apoptosis. EFHD2 inhibits TNF-induced apoptosis in primary IECs and intestinal organoids (enteroids). Mice deficient of Efhd2 in IECs exhibit excessive IEC death and exacerbated experimental colitis. Mechanistically, EFHD2 interacts with Cofilin and suppresses Cofilin phosphorylation, thus blocking TNF receptor I (TNFR1) internalization to inhibit IEC apoptosis and consequently protecting intestine from inflammation. Our findings deepen the understanding of EFHD2 as the key regulator of membrane receptor trafficking, providing insight into death receptor signals and autoinflammatory diseases.


Subject(s)
Colitis , Receptors, Tumor Necrosis Factor, Type I , Humans , Mice , Animals , Receptors, Tumor Necrosis Factor, Type I/genetics , Intestines/pathology , Epithelial Cells/metabolism , Intestinal Mucosa/metabolism , Apoptosis , Colitis/pathology , Inflammation/pathology , Actin Depolymerizing Factors/metabolism , Calcium-Binding Proteins/metabolism
17.
Aging (Albany NY) ; 16(1): 431-444, 2024 01 05.
Article in English | MEDLINE | ID: mdl-38189823

ABSTRACT

BACKGROUND: Glioma is one of the most aggressive malignant brain tumors and is characterized by invasive growth and poor prognosis. TBC1D1, a member of the TBC family, is associated with the development of various malignancies. However, the role of TBC1D1 in glioma-genesis remains unclear. METHODS: The effect of TBC1D1 on the prognosis of glioma patients and related influencing factors were analyzed in the Chinese Glioma Genome Atlas (CGGA) and The Cancer Genome Atlas (TCGA) databases. Expression of TBC1D1 in glioma cell lines was detected by western blotting. Cell viability and proliferation were measured by EdU and Colony formation assays, respectively. Transwell and wound healing assays were performed to determine the cell migration and invasion capacities. Immunofluorescence was used to observe actin morphology in the cytoskeleton. RESULTS: We discovered that high TBC1D1 expression in gliomas led to poor prognosis. Downregulation of TBC1D1 in glioma cells significantly inhibited multiple important functions, such as proliferation, migration, and invasion. We further demonstrated that the tumor-inhibitory effect of TBC1D1 might occur through the P-LIMK/cofilin pathway, destroying the cytoskeletal structure and affecting the depolymerization of F-actin, thereby inhibiting glioma migration. CONCLUSION: TBC1D1 affects the balance and integrity of the actin cytoskeleton via cofilin, thereby altering the morphology and aggressiveness of glioma cells. This study provides a new perspective on its role in tumorigenesis, thereby identifying a potential therapeutic target for the treatment of gliomas.


Subject(s)
Brain Neoplasms , Glioma , Humans , Cell Proliferation/genetics , Cell Line, Tumor , Glioma/pathology , Brain Neoplasms/pathology , Cell Movement/genetics , Actins , Actin Cytoskeleton/metabolism , Actin Depolymerizing Factors/metabolism , Actin Depolymerizing Factors/pharmacology , GTPase-Activating Proteins/genetics
18.
Adv Protein Chem Struct Biol ; 138: 275-300, 2024.
Article in English | MEDLINE | ID: mdl-38220428

ABSTRACT

Osteosarcoma is a malignant osseous neoplasm. Osteosarcoma is a primary bone malignancy capable of producing osteoid tissue or immature bones. A subsequent malignant degeneration of the primary bone pathology occurs less frequently in adults. The over-expression of several proteins, including Heat shock proteins, Cofilin, Annexins, Insulin-like growth factor, transforming growth factor-ß, Receptor tyrosine kinase, Ezrin, Runx2, SATB2, ATF4, Annexins, cofilin, EGFR, VEGF, retinoblastoma 1 (Rb1) and secreted protein, has been associated to the development and progression of osteosarcoma. These proteins are involved in cell adhesion, migration, invasion, and the control of cell cycle and apoptosis. In genomic studies, osteosarcoma has been associated with several genetic abnormalities, including chromosomal rearrangements, gene mutations, and gene amplifications. These differentially expressed proteins could be used as early identification biomarkers or treatment targets. Proteomics and genomics play significant parts in enhancing our molecular understanding of osteosarcoma, and their integration provides essential insights into this aggressive bone cancer. This review will discuss the tumour biology that has assisted in helping us better understand the causes of osteosarcoma and how they could potentially be used to find new treatment targets and enhance the survival rate for osteosarcoma patients.


Subject(s)
Bone Neoplasms , Osteosarcoma , Adult , Humans , Proteomics , Osteosarcoma/genetics , Osteosarcoma/metabolism , Osteosarcoma/pathology , Genomics , Bone Neoplasms/genetics , Bone Neoplasms/metabolism , Bone Neoplasms/pathology , Actin Depolymerizing Factors/metabolism , Annexins
19.
Plant Cell ; 36(4): 881-898, 2024 Mar 29.
Article in English | MEDLINE | ID: mdl-37941457

ABSTRACT

Double fertilization in many flowering plants (angiosperms) often occurs during the hot summer season, but the mechanisms that enable angiosperms to adapt specifically to high temperatures are largely unknown. The actin cytoskeleton is essential for pollen germination and the polarized growth of pollen tubes, yet how this process responds to high temperatures remains unclear. Here, we reveal that the high thermal stability of 11 Arabidopsis (Arabidopsis thaliana) actin-depolymerizing factors (ADFs) is significantly different: ADFs that specifically accumulate in tip-growing cells (pollen and root hairs) exhibit high thermal stability. Through ancestral protein reconstruction, we found that subclass II ADFs (expressed specifically in pollen) have undergone a dynamic wave-like evolution of the retention, loss, and regeneration of thermostable sites. Additionally, the sites of AtADF7 with high thermal stability are conserved in ADFs specific to angiosperm pollen. Moreover, the high thermal stability of ADFs is required to regulate actin dynamics and turnover at high temperatures to promote pollen germination. Collectively, these findings suggest strategies for the adaptation of sexual reproduction to high temperature in angiosperms at the cell biology level.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Actin Depolymerizing Factors/metabolism , Actins/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Temperature , Germination/genetics , Arabidopsis/metabolism , Pollen/metabolism , Pollen Tube
20.
Biochem Biophys Res Commun ; 695: 149394, 2024 Feb 05.
Article in English | MEDLINE | ID: mdl-38157629

ABSTRACT

In addition to its role in pyroptosis and inflammatory cytokine maturation, caspase-4 (CASP4) also contributes to the fusion of phagosomes with lysosomes and cell migration. However, its role in cell division remains elusive. In this study, we demonstrate that CASP4 is indispensable for proper cell division in epithelial cells. Knockout of CASP4 (CASP4 KO) in HepG2 cells led to delayed cell proliferation, increased cell size, and increased multinucleation. In mitosis, CASP4 KO cells showed multipolar spindles, asymmetric spindle positioning, and chromosome segregation errors, ultimately increasing DNA content and chromosome number. We also found that phalloidin, a marker of filamentous actin, increased in CASP4 KO cells owing to suppressed actin depolymerization. Moreover, the levels of actin polymerization-related proteins, including Rho-associated protein kinase1 (ROCK1), LIM kinase1 (LIMK1), and phosphorylated cofilin, significantly increased in CASP4 KO cells. These results suggest that CASP4 contributes to proper cell division through actin depolymerization.


Subject(s)
Actin Depolymerizing Factors , Actins , Actins/metabolism , Actin Depolymerizing Factors/metabolism , Cell Movement , Mitosis , Epithelial Cells/metabolism , Lim Kinases/genetics , Phosphorylation
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