Project Grant 2313725
- The National Science Foundation Division of Molecular and Cellular Biosciences awarded $508,806 under the Biological Sciences (CFDA 47.074) federal grant program to the Regents of the University of Michigan for a collaborative research project titled "Mechanics of Reconstituted Self-Organized Contractile Actomyosin Systems." The project aims to advance understanding of cytoskeletal network self-organization and force generation through reconstituting actin networks and contractile...
- This National Science Foundation (NSF) Project Grant award under the Engineering program (CFDA 47.041) supports basic research to uncover the mechanisms by which mechanical forces at the protein level regulate cell mechanics and direct tissue-scale behaviors. The $616,151 award, with a project period from September 1, 2024 to August 31, 2027, will fund an interdisciplinary study leveraging molecular biology, bioengineering, materials science, and computational approaches. The research will...
- The National Science Foundation (NSF) Division of Molecular and Cellular Biosciences awarded a $669,456 Project Grant to the University of Chicago under the Biological Sciences program (CFDA 47.074) for the project "Collaborative Research: Tools 4 Cells: Developing Next Generation Methods for Studying Cytoskeletal Factors in the Cell Nucleus". This 3-year project aims to develop novel tools to precisely perturb and study the role of the cytoskeletal protein actin within the cell...
- This Project Grant award, titled "CAREER: TOWARDS UNDERSTANDING MECHANICAL SIGNALING AT THE CELL MEMBRANE," was provided by the National Science Foundation (NSF) under the Biological Sciences (CFDA 47.074) Federal Grant Program. The award of $805,374 will fund research to uncover the fundamental principles governing how cells sense and respond to mechanical forces at their surface, which is critical to numerous biological functions and human diseases. The project will employ advanced...
- This Project Grant award, titled "MECHALINC: MECHANISTICS OF LINC-MEDIATED FORCE TRANSMISSION", was provided by the National Science Foundation (NSF) under the Biological Sciences (CFDA 47.074) federal grant program. The $1,117,664 award, with a project period from February 15, 2025 to January 31, 2029, will support research to investigate the physical and molecular mechanisms underlying how cells transmit mechanical forces from their environment to the cell nucleus. The project aims...
- This National Science Foundation (NSF) Biological Sciences program project grant, awarded to Oregon Health & Science University (OHSU), aims to uncover the underlying biophysical mechanisms of directed cell migration. The $1,049,497 grant, with a period of performance from January 2024 to December 2027, will examine how actin cytoskeletal networks and adhesion receptors interact as interdependent subsystems to facilitate matrix-guided cell migration, which is crucial for tissue formation and...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences Federal Grant Program (CFDA 47.049) provides $380,000 to Northeastern University to develop a new generation of computational models for studying eukaryotic cell motility. The research aims to better understand how cells move through complex tissues, which is critical for both healthy developmental processes and the spread of cancer. The project will involve a collaborative effort between...
- This Project Grant from the National Science Foundation's Division of Civil, Mechanical, and Manufacturing Innovation, under the Engineering program (CFDA 47.041), provides $147,630 to The Ohio State University Office of Sponsored Programs from October 1, 2022 to April 30, 2023. The funding will support research investigating how mechanical forces are transmitted within cells through the linker of nucleoskeleton to cytoskeleton (LINC) complex. The principal investigator will develop novel...
- The National Science Foundation (NSF) Division of Molecular and Cellular Biosciences awarded a $139,341 project grant to the Regents of the University of California, San Francisco (UCSF) under the NSF Biological Sciences program (CFDA 47.074). The 3-year grant, effective August 1, 2023, supports collaborative research to investigate the biomechanical mechanisms underlying wound resilience in the single-celled organism Stentor coeruleus. The research will leverage cell biology, microfluidics, and...
- The National Science Foundation awarded a three-year, $533,158 Project Grant to the University of Chicago under the Biological Sciences federal grant program (CFDA 47.074). The grant will fund research to systematically characterize the self-organization and force generation of actin networks and contractile rings within synthetic lipid vesicles. Researchers will reconstitute cytoskeletal protein networks from purified components within giant unilamellar vesicles to define the essential elements...
COLLABORATIVE RESEARCH: UNDERSTANDING AND CONTROLLING FORCE GENERATION BY A CENTRIN-BASED CONTRACTILE SYSTEM -FORCE GENERATION UNDERLIES MANY OF THE PROCESSES MOST ASSOCIATED WITH LIFE: MOVEMENT, GROWTH, AND REPRODUCTION. THE ULTRAFAST CONTRACTION OF THE CILIATE SPIROSTOMUM AMBIGUUM REPRESENTS THE MOST POWERFUL BIOLOGICAL FORCE GENERATION IN NATURE. THIS EXTREME MOVEMENT IS THOUGHT TO BE DRIVEN BY A CONTRACTILE PROTEIN-BASED NETWORK KNOWN AS MYONEMES, WHICH IS POORLY UNDERSTOOD. THE PROJECT WILL COMBINE EXPERIMENTS AND COMPUTATIONAL MODELING TO ELUCIDATE THE MECHANISM OF MYONEME CONTRACTION WITH A VIEW TOWARD REVEALING NEW PRINCIPLES OF BIOLOGICAL FORCE GENERATION. THE FINDINGS WILL SET THE STAGE TO ENGINEER FORCE-GENERATING SYSTEMS FOR SYNTHETIC CELLS, FOR EXAMPLE TO CONTROL CELL SHAPE AND MOVEMENT. THE TEAM WAS ESTABLISHED AT A 2019 NSF IDEAS LAB ON BUILDING SYNTHETIC CELLS AS PART OF THE RULES OF LIFE INITIATIVE. THE BROADER IMPACT OF THE WORK INCLUDES ITS INTRINSIC NATURE IN REVEALING THE MECHANISTIC DETAILS OF WHAT MAY BE THE MOST POWERFUL BIOLOGIC MOTOR KNOWN. ADDITIONAL ACTIVITIES WILL INCLUDE THE MULTIDISCIPLINARY TRAINING OF HIGH SCHOOL, UNDERGRADUATE, GRADUATE STUDENTS, AND POST-DOCTORAL SCHOLARS. A PERMANENT EXHIBIT ON ?SEEING CELLS? AT THE MARINE BIOLOGICAL LABORATORY (MBL), WHERE 1000+ SCIENTISTS AND MEMBERS OF THE PUBLIC VISIT EACH YEAR, WILL ALSO BE EXPANDED UPON. A THEME OF THE EXHIBIT IS THAT A GIVEN FUNCTION IN A CELL CAN BE ACCOMPLISHED THROUGH DIFFERENT MECHANISMS IN DIFFERENT TYPES OF CELLS. THE PROJECT WILL CATALYZE NEW DISCUSSIONS ON THIS THEME, THE DESIGN OF SYNTHETIC CELLS, AND THEIR POSSIBLE IMPACT ON SOCIETY, AND IDEAS FROM THESE DISCUSSIONS WILL BE INCORPORATED INTO THE EXHIBIT AND TRANSLATED TO AN ONLINE FORMAT TO REACH A WIDE AUDIENCE. MYONEME CONTRACTION IS TRIGGERED BY CALCIUM, AND MYONEMES ARE COMPOSED OF CENTRIN EF-HAND PROTEINS AND SFI1 SCAFFOLD PROTEINS. IN CONTRAST TO THE WELL-STUDIED ATP-DRIVEN ACTOMYOSIN CONTRACTILE SYSTEM, LITTLE IS KNOWN ABOUT HOW MYONEMES GENERATE FORCE. STUDIES AT MULTIPLE SCALES WILL PRODUCE QUANTITATIVE INTEGRATIVE MODELS THAT EXPLAIN HOW MOLECULAR CONFORMATIONAL CHANGES PRODUCE FORCE IN THE WHOLE ORGANISM. A KEY ADVANCE ENABLING THE STUDIES IS THE TEAM?S RECONSTITUTION OF CALCIUM-INDUCED CONTRACTION BY FILAMENTS COMPOSED OF ONLY CENTRIN AND SFI1 IN VITRO. THE PROJECT WILL TEST THE HYPOTHESIS THAT SPECIFIC CONFORMATIONAL CHANGES OF MYONEME PROTEINS AT THE MOLECULAR LEVEL ARE TRIGGERED BY CALCIUM TO DRIVE THE ULTRAFAST CONTRACTION AT THE MILLIMETER SCALE IN THIS ORGANISM. THE AIMS ARE TO 1) DETERMINE THE FACTORS THAT MODULATE ASSEMBLY AND FORCE GENERATION IN VITRO, 2) ELUCIDATE THE STRUCTURAL BASES OF CONTRACTION AT THE MOLECULAR LEVEL, AND 3) DETERMINE HOW THE INTERPLAY OF THE MYONEME NETWORK, CALCIUM DYNAMICS, MICROTUBULES, AND THEIR SURROUNDINGS PRODUCE ULTRAFAST CONTRACTION OF THE WHOLE ORGANISM. IN THE LONG TERM, THIS WORK WILL ENABLE NOVEL UNDERSTANDING OF AN INDEPENDENT BIOLOGICAL MECHANISM FOR ULTRAFAST FORCE GENERATION, WHICH CAN BE HARNESSED TO MANIPULATE BIOLOGICAL MATERIALS, BOTH IN VITRO AND IN VIVO. THIS PROJECT WAS CO-FUNDED BY THE MOLECULAR BIOPHYSICS AND THE SYSTEMS AND SYNTHETIC BIOLOGY PROGRAMS IN THE DIVISION OF MOLECULAR AND CELLULAR BIOSCIENCES. 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.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $103.1k | 8/15/25 | ||
| Not listed | $103.1k | 6/12/25 | ||
| Not listed | $206.1k | 6/1/23 |