Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment
About This Grant
PROJECT SUMMARY Neurodevelopmental disorders such as autism spectrum disorder present a particular challenge due to the complex nature of clinical symptoms and etiology. To understand and dissect human disorders, animal models provide valuable insights that can lead to novel therapeutics and/or drive public health decisions. To facilitate this critical level of comprehension, the mouse model has significantly progressed our understanding of how in utero exposure to common toxins, such as bisphenol A (BPA), can disrupt neural development. Tremendous progress has been made using this model to elucidate the toxin-related pathophysiology. In particular, the mouse model is highly valuable due to the relative evolutionary similarity between rodents and humans. That said, other models, specifically zebrafish (Danio rerio), can complement murine systems because of their unique set of biological attributes and the technologies that have been developed to exploit these biological advantages. Unlike mammalian development, zebrafish development is rapid and external. When seeking to understand neurodevelopmental disorders, these factors provide significant benefits in determining where and when critical periods of dysfunction might occur. Zebrafish also have a relatively reduced nervous system, at least early in development, and are translucent. These factors provide crucial advantages to both identifying aberrant neural circuits and pinpointing cellular and systems-wide perturbations. Perhaps most importantly, the small size and high fecundity of zebrafish facilitate high-throughput screens that can be used to develop novel therapeutics. To further understand how toxins like BPA disrupt neural development, this project seeks to determine the effects of BPA exposure at behavioral and synaptic levels. Behavioral assays used in this project are amenable to high-throughput screens and are mediated by well-annotated and restricted neural circuits. This should expedite investigations at the level of the synapse, another goal of this project. Finally, the project seeks to understand the cellular and molecular mechanisms underlying BPA-mediated pathophysiology and rescue deficits due to this exposure.
Grant Summary
Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment is a NIEHS - National Institute of Environmental Health Sciences grant providing up to $400K for university, nonprofit, healthcare org. Applications are due 2029-04-07 (open). Check eligibility and apply with FindGrants.
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How to Apply
Up to $400K
2029-04-07
- 1Confirm your organization is eligible for Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment from NIEHS - National Institute of Environmental Health 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.
- 4Review every section against the requirements checklist, then export a submission-ready application pack and submit it to NIEHS - National Institute of Environmental Health Sciences before the deadline.
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Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment: Frequently Asked Questions
Who is eligible for the Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment?
Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment is offered by NIEHS - National Institute of Environmental Health 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 Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment provide?
Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment provides up to $400K per award from NIEHS - National Institute of Environmental Health 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 Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment deadline?
Applications for Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment are due 2029-04-07 (open). Because deadlines can change, verify the date with the funder, NIEHS - National Institute of Environmental Health Sciences, and give yourself enough time to prepare a complete, competitive application before the close date.
How do you apply for the Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment?
To apply for Cellular and molecular mechanisms of BPA-induced disruption of neurodevelopment, 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 NIEHS - National Institute of Environmental Health Sciences.