Project Grant 2514564
- The National Science Foundation Division of Integrative Organismal Systems awarded Washington State University $539,219 under the Biological Sciences federal grant program (CFDA 47.074) from April 2022 through March 2025. The award will support research to elucidate how nonlinearities within the musculotendon system enable bipedal hopping in kangaroo rats when faced with abrupt changes in slope that can disrupt forward motion or cause unwanted pitching. Investigators will examine ankle...
- The National Science Foundation Division of Integrative Organismal Systems awarded a three-year Project Grant of $333,961 to the University of Southern California Department of Contracts and Grants under the Biological Sciences federal grant program (CFDA 47.074) beginning April 1, 2022. The grant will support collaborative research to elucidate how nonlinearities within the musculotendon system enable bipedal locomotion in unpredictable environments. Researchers will study kangaroo rat...
- This Project Grant award from the National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) provides $535,465 to Trustees of Tufts College (Tufts University) for a collaborative research project titled "Biodesign: A Deep Dive into Dynamic Damping in Extreme Underwater Maneuvering". The primary goal is to investigate how fish achieve rapid maneuvers that exceed the capabilities of advanced robotic systems, focusing on the hypothesis that fish can dynamically modulate...
- This Project Grant award from the National Science Foundation's (NSF) Biological Sciences program (CFDA 47.074) provides $270,000 in funding from July 1, 2025 to June 30, 2028 to support a Postdoctoral Fellowship. The research will investigate the proximate origins and ecological/evolutionary consequences of resource polyphenism - the phenomenon where organisms can quickly change their physical features and behavior in response to environmental changes. The research will focus on the Mexican...
- This Project Grant award, funded by the National Science Foundation (NSF) under the Biological Sciences program (CFDA 47.074), supports research on how the hormone aldosterone regulates amphibian metamorphosis from aquatic to terrestrial forms. The $629,995 award to the University of Cincinnati, with a performance period from September 2024 to August 2027, aims to reveal aldosterone's precise role in frog development by measuring corticosteroid levels, comparing wild-type and mutant tadpoles,...
- This $932,200 Project Grant award from the National Science Foundation's Biological Sciences Program (CFDA 47.074) will support collaborative research at Florida State University to investigate the neurobiology and behavior underlying speciation in upland chorus frogs. The project aims to better understand how changes in brain function and mating behaviors drive the formation of new frog species. Key research activities will include studying neural circuits related to auditory communication...
- The National Science Foundation awarded a $138,000 Project Grant to support research titled "Fluid Homeostasis in the Evolution of Frog Breeding Phenology" from August 1, 2021 through July 31, 2023. The grant was awarded under the Biological Sciences program (CFDA 47.074) to promote progress in the biological sciences and enhance understanding of major problems confronting the nation. Funding will support postdoctoral research examining how fluid homeostasis influences the timing of...
- This $355,123 federal Project Grant award from the National Science Foundation's Biological Sciences program (CFDA 47.074) supports research to genetically modify the immune system of the African clawed frog (Xenopus tropicalis) to improve its resistance to the deadly chytrid fungus. The goal is to identify how altering the frog's major histocompatibility complex (MHC) genes affects its ability to fight off this pathogen and survive infection. The project includes a sub-award to the University...
- This National Science Foundation (NSF) Biological Sciences (CFDA 47.074) Project Grant award of $750,000.00 will investigate how the central nervous system of vertebrates produces coordinated leg movements. Specifically, the project will use the turtle spinal cord as a model system to pharmacologically perturb inhibitory and excitatory neurotransmitter receptors to understand how the spinal cord generates and selects appropriate motor outputs for swimming, scratching, and leg withdrawal...
- The National Science Foundation awarded a $315,757 Project Grant to Simmons University under the Biological Sciences program (CFDA 47.074) for the period of April 1, 2021 through March 31, 2024. The grant aims to advance understanding of the developmental genetics underlying limb initiation in amphibians. Specifically, the university will conduct research to determine the cellular origins and molecular mechanisms that drive limb formation in metamorphosing frogs. Researchers will use...
BRC-BIO: TRADE-OFFS IN LOCOMOTOR PERFORMANCE: COMPARING HOPPERS AND JUMPERS IN VARIABLE ENVIRONMENTS -THE WAY AN ORGANISM NAVIGATES AN ENVIRONMENT OR HABITAT CAN BE INFLUENCED BY AN INDIVIDUAL?S PHYSIOLOGY AND THE PHYSICAL PROPERTIES OF ITS ENVIRONMENT. MORE SPECIFICALLY, THE SUBSTRATE AN ORGANISM INTERACTS WITH CAN POSE VARIOUS CHALLENGES DURING LOCOMOTOR MOVEMENTS THAT CAN IMPACT PERFORMANCE. ADAPTATIONS IN MOVEMENT REQUIRE A DYNAMIC INTERPLAY BETWEEN AN ORGANISMS? NERVOUS SYSTEM, ANATOMY, AND MUSCLE PHYSIOLOGY, WHICH TOGETHER DRIVE WHOLE-BODY MOVEMENTS. HOWEVER, THE PHYSIOLOGICAL STRATEGIES THAT ONE ANIMAL USES MAY NOT BE IDEALLY SUITED FOR A DIFFERENT HABITAT OR SUBSTRATE TYPE. THIS RESEARCH AIMS TO UNDERSTAND HOW SPECIALIZED WAYS OF MOVEMENT, MORE SPECIFICALLY, HOW HOPPING AND JUMPING MAY CONSTRAIN HOW AN ORGANISM RESPONDS TO INSTANTANEOUS CHANGES IN THE ENVIRONMENT. FROGS AND TOADS PROVIDE A UNIQUE MODEL TO UNDERSTAND VARIATION IN MOVEMENT STRATEGIES. THIS PROJECT WILL INVESTIGATE WHOLE-BODY MOVEMENT AND NERVOUS SYSTEM CONTROL OF MUSCLE RECRUITMENT IN RESPONSE TO CHANGES IN SUBSTRATE STIFFNESS. IN ADDITION, THE PROJECT WILL INVESTIGATE THE MECHANICS AND ORGANIZATION OF TENDON TISSUE TO BETTER UNDERSTAND THE ROLE OF TENDON STIFFNESS IN SPECIALIZED FORMS OF MOVEMENT. SUCH UNIQUE ADAPTATIONS IN MUSCLE AND TENDON PHYSIOLOGY CAN INFORM THE IMPACTS OF CHANGING ENVIRONMENTS ACROSS HABITATS ON LOCOMOTION, AS WELL AS DESIGN PARAMETERS IN ENGINEERED SYSTEMS DEALING WITH ENVIRONMENTAL DISTURBANCE. THE BROADER IMPACTS OF THIS RESEARCH WILL INCREASE RESEARCH OPPORTUNITIES AND MENTORSHIP OF UNDERGRADUATE STUDENTS HISTORICALLY UNDERREPRESENTED IN STEM, AS WELL AS ENABLE THE DEVELOPMENT OF EDUCATIONAL WORKSHOP-BASED TRAININGS AND RESOURCES TO INCREASE ACCESS TO STEM RESEARCH OPPORTUNITIES ACROSS THE HOME INSTITUTION. THROUGHOUT HISTORY THE EMERGENCE OF NEW MODES OF LOCOMOTION HAS PLAYED A CRUCIAL ROLE IN AN ANIMAL?S ABILITY TO NAVIGATE NEW HABITATS. FOR EXAMPLE, BEHAVIORAL TRANSITIONS BETWEEN MICROHABITATS MAY RESULT IN MORE SUBTLE SHIFTS IN AN ANIMAL?S LOCOMOTOR STRATEGY. IN SOME CASES, THE LOCOMOTOR SYSTEM MAY BE FLEXIBLE ENOUGH TO ACCOMMODATE CHANGES IN THE PHYSICAL PROPERTIES OF THE ENVIRONMENT. THE PROPOSED WORK AIMS TO UNDERSTAND HOW SPECIALIZED WAYS OF MOVEMENT HAVE UNIQUELY CONSTRAINED MOTOR CONTROL STRATEGIES AND MUSCLE-TENDON PROPERTIES. TO ADDRESS THIS, THE FIRST AIM WILL QUANTIFY AND COMPARE INTERSPECIFIC KINEMATIC VARIATION BETWEEN THE LONG DISTANCE, ENDURANCE HOPPING OF CANE TOADS, AND THE FAST, POWERFUL JUMPS OF CUBAN TREE FROGS, IN RESPONSE TO ENVIRONMENTAL PERTURBATIONS IN SUBSTRATE STIFFNESS. THE SECOND AIM MEASURES IN VIVO HINDLIMB MUSCLE LENGTH AND MOTOR PATTERNS IN RESPONSE TO SUBSTRATE STIFFNESS TO CHARACTERIZE THE MOTOR CONTROL MECHANISMS USED BY LONG DISTANCE ENDURANCE HOPPERS. THE THIRD AIM SEEKS TO CHARACTERIZE TENDON ULTRASTRUCTURE BY QUANTIFYING COLLAGEN FIBRIL ORGANIZATION USING TECHNIQUES IN TRANSMISSION ELECTRON MICROSCOPY AND SERIAL BLOCK-FACE SCANNING ELECTRON MICROSCOPY. LASTLY, TENDON MATERIAL PROPERTIES WILL BE QUANTIFIED USING IN VITRO TENDON TISSUE STRESS AND STRAIN TESTS TO DETERMINE THE ROLE OF TISSUE STIFFNESS ACROSS SPECIES SPECIALIZED FOR DIFFERING MODES OF LOCOMOTION AND POWER OUTPUT. THE PROPOSED RESEARCH WILL ADVANCE UNDERSTANDING OF HOW SPECIALIZATION IN DIFFERENT LOCOMOTOR MODES CAN PROVIDE ROBUST BENEFITS OR LIMITATIONS AT VARIOUS LEVELS OF PHYSIOLOGICAL ORGANIZATION. THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.- SUBAWARDS ARE NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $286.4k | 5/23/25 |