Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport
About This Grant
PROJECT SUMMARY The cytoskeleton is a dynamic network of filamentous structures, including microtubules and actin, that regulate essential cellular processes such as cell shape, growth, and signaling. Cytoskeleton also serves as tracks for molecular motors, which transport a variety of cellular cargoes, including organelles, macromolecules, and vesicles. These cargoes are linked to motors by specialized connector proteins. Disruptions in connector proteins are implicated in a range of neurodevelopmental and neurodegenerative diseases, as well as cancers. Despite their importance, these proteins continue to be understudied, primarily due to their perceived role as passive linkers and the technical challenges in working with them. However, recent discoveries suggest that connector proteins may play more active roles, in some cases even have enzymatic functions. This proposal aims to uncover mechanisms of connector protein functions through a detailed investigation of actin-microtubule and motor-cargo interactions. Actin and microtubules are linked by the spectraplakin family of large and evolutionarily conserved proteins, critical for neuronal development and differentiation. Recent discoveries of ATPase domains within these proteins suggest they may haves beyond simply linking cytoskeletal components. One goal of this proposal is to investigate the role of spectraplakin’s ATPase domains via structural, biochemical, and cell biology approaches. Another goal is to explore how dynamic changes in motor-cargo connectors facilitate the transport of diverse cargoes along microtubule tracks. The focus will be on the cytoplasmic dynein-1 (dynein) and the connectors (adaptors) that activate and link dynein to cargo. Dynein is a microtubule minus-end directed motor that plays essential roles in cell division, and transports hundreds of different cellular cargoes. While several motor-cargo connectors have been identified, the regulatory mechanisms enabling cargo transport are not fully understood. We are investigating whether connector proteins work together to activate dynein movement and/or facilitate cargo handoff between different dynein complexes. Using innovative approaches, including time- resolved cryo-EM, complex in-vitro reconstitutions, and live-cell imaging in induced neurons, we are uncovering critical mechanisms that govern cytoskeletal connector proteins, furthering our understanding of how the cytoskeleton regulates essential cellular processes.
Grant Summary
Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport is a NIGMS - National Institute of General Medical Sciences grant providing up to $516K for university, nonprofit, healthcare org. Applications are due 2031-03-31 (open). Check eligibility and apply with FindGrants.
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Up to $516K
2031-03-31
- 1Confirm your organization is eligible for Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport from NIGMS - National Institute of General Medical Sciences, checking organization type, location, and any population or project requirements.
- 2Gather the required documents and information, including your organization details, project plan, and budget figures.
- 3Draft your application narrative and budget addressing the funder's priorities and review criteria. FindGrants can draft each section for you to review and edit.
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Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport: Frequently Asked Questions
Who is eligible for the Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport?
Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport is offered by NIGMS - National Institute of General Medical Sciences and is generally open to university, nonprofit, healthcare org. It is open to organizations nationwide unless the funder specifies otherwise. Review the specific eligibility terms before applying, since funders set their own requirements around organization type, location, and the population or project being served.
How much funding does the Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport provide?
Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport provides up to $516K per award from NIGMS - National Institute of General Medical Sciences. Actual award sizes depend on the scope of your project, available program funds, and the number of applicants, so build a budget that reflects realistic, allowable costs rather than the maximum figure.
When is the Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport deadline?
Applications for Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport are due 2031-03-31 (open). Because deadlines can change, verify the date with the funder, NIGMS - National Institute of General Medical Sciences, and give yourself enough time to prepare a complete, competitive application before the close date.
How do you apply for the Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport?
To apply for Cytoskeletal connectors: Deciphering the fundamental mechanisms of cytoskeletal dynamics and transport, confirm your eligibility, gather the required documents, and prepare a narrative and budget that address the funder's priorities. FindGrants guides you step by step and can draft each section, then exports a submission-ready application pack for this grant from NIGMS - National Institute of General Medical Sciences.