Carrie L. Partch
#169,221
Most Influential Person Now
American protein biochemist and circadian biologist
Carrie L. Partch's AcademicInfluence.com Rankings
Carrie L. Partchbiology Degrees
Biology
#14912
World Rank
#18786
Historical Rank
#2936
USA Rank
Biochemistry
#2704
World Rank
#2888
Historical Rank
#379
USA Rank
Download Badge
Biology
Carrie L. Partch's Degrees
- PhD Biochemistry University of California, San Francisco
- Bachelors Biochemistry University of California, Davis
Why Is Carrie L. Partch Influential?
(Suggest an Edit or Addition)According to Wikipedia, Carrie L. Partch is an American protein biochemist and circadian biologist. Partch is currently a Professor in the Department of Chemistry and Biochemistry at the University of California, Santa Cruz. She is noted for her work using biochemical and biophysical techniques to study the mechanisms of circadian rhythmicity across multiple organisms. Partch applies principles of chemistry and physics to further her research in the field of biological clocks.
Carrie L. Partch's Published Works
Published Works
- Molecular architecture of the mammalian circadian clock. (2014) (988)
- Analysis of Protein Stability and Ligand Interactions by Thermal Shift Assay (2015) (312)
- Antibacterial membrane attack by a pore-forming intestinal C-type lectin (2013) (244)
- Crystal Structure of the Heterodimeric CLOCK:BMAL1 Transcriptional Activator Complex (2012) (237)
- Role of structural plasticity in signal transduction by the cryptochrome blue-light photoreceptor. (2005) (170)
- Molecular basis for peptidoglycan recognition by a bactericidal lectin (2010) (128)
- Cryptochrome 1 regulates the circadian clock through dynamic interactions with the BMAL1 C-terminus (2015) (122)
- Structural basis of the day-night transition in a bacterial circadian clock (2017) (121)
- Photochemistry and Photobiology of Cryptochrome Blue-light Photopigments: The Search for a Photocycle (2005) (118)
- Crystal structure of cryptochrome 3 from Arabidopsis thaliana and its implications for photolyase activity (2006) (118)
- Structure and function of animal cryptochromes. (2007) (94)
- Posttranslational regulation of the mammalian circadian clock by cryptochrome and protein phosphatase 5 (2006) (93)
- CK1δ/ε protein kinase primes the PER2 circadian phosphoswitch (2018) (89)
- Regulation of C-type Lectin Antimicrobial Activity by a Flexible N-terminal Prosegment*S⃞ (2009) (84)
- Emerging Models for the Molecular Basis of Mammalian Circadian Timing (2014) (81)
- Formation of a repressive complex in the mammalian circadian clock is mediated by the secondary pocket of CRY1 (2017) (76)
- Coactivators necessary for transcriptional output of the hypoxia inducible factor, HIF, are directly recruited by ARNT PAS-B (2011) (67)
- Coactivator recruitment: A new role for PAS domains in transcriptional regulation by the bHLH‐PAS family (2010) (61)
- Animal Cryptochromes: Divergent Roles in Light Perception, Circadian Timekeeping and Beyond (2017) (55)
- Cancer/Testis Antigen PASD1 Silences the Circadian Clock. (2015) (51)
- A Slow Conformational Switch in the BMAL1 Transactivation Domain Modulates Circadian Rhythms. (2017) (50)
- Structure, function, and mechanism of the core circadian clock in cyanobacteria (2018) (50)
- Cryptochromes and circadian photoreception in animals. (2005) (44)
- Purification and characterization of a type III photolyase from Caulobacter crescentus. (2008) (44)
- Structural dynamics of RbmA governs plasticity of Vibrio cholerae biofilms (2017) (42)
- Dynamics at the serine loop underlie differential affinity of cryptochromes for CLOCK:BMAL1 to control circadian timing (2020) (36)
- Ketogenesis impact on liver metabolism revealed by proteomics of lysine β-hydroxybutyrylation (2021) (36)
- Casein kinase 1 dynamics underlie substrate selectivity and the PER2 circadian phosphoswitch (2019) (35)
- Regulating the ARNT/TACC3 axis: multiple approaches to manipulating protein/protein interactions with small molecules. (2013) (35)
- Molecular Basis of Coiled Coil Coactivator Recruitment by the Aryl Hydrocarbon Receptor Nuclear Translocator (ARNT)* (2009) (31)
- Orchestration of circadian timing by macromolecular protein assemblies. (2020) (30)
- Further evidence for the role of cryptochromes in retinohypothalamic photoreception/phototransduction. (2004) (27)
- Coiled-coil Coactivators Play a Structural Role Mediating Interactions in Hypoxia-inducible Factor Heterodimerization* (2015) (25)
- NF-κB modifies the mammalian circadian clock through interaction with the core clock protein BMAL1 (2020) (21)
- Reconstitution of an intact clock reveals mechanisms of circadian timekeeping (2021) (20)
- Assembly and function of bHLH–PAS complexes (2017) (20)
- The human CRY1 tail controls circadian timing by regulating its association with CLOCK:BMAL1 (2020) (19)
- Early doors (Edo) mutant mouse reveals the importance of period 2 (PER2) PAS domain structure for circadian pacemaking (2016) (17)
- New insights into non-transcriptional regulation of mammalian core clock proteins (2020) (17)
- The tail of cryptochromes: an intrinsically disordered cog within the mammalian circadian clock (2020) (14)
- Cryptochrome proteins regulate the circadian intracellular behavior and localization of PER2 in mouse suprachiasmatic nucleus neurons (2022) (10)
- CRY2 missense mutations suppress P53 and enhance cell growth (2021) (10)
- bHLH-PAS proteins: functional specification through modular domain architecture (2013) (9)
- Biochemical mechanisms of period control within the mammalian circadian clock. (2021) (7)
- Quantification of protein abundance and interaction defines a mechanism for operation of the circadian clock (2022) (6)
- Cytosolic BMAL1 moonlights as a translation factor. (2015) (5)
- Structural mimicry confers robustness in the cyanobacterial circadian clock (2020) (4)
- The three Rs of transcription: recruit, retain, and recycle. (2010) (4)
- Signal transduction mechanisms of cryptochrome (2006) (3)
- The CRY1 tail controls circadian timing by regulating its association with CLOCK:BMAL1 (2019) (3)
- PERIOD phosphorylation leads to feedback inhibition of CK1 activity to control circadian period (2022) (3)
- How circadian clocks keep time: the discovery of slowness (2022) (3)
- Protein dynamics regulate distinct biochemical properties of cryptochromes in mammalian circadian rhythms (2019) (2)
- Coupling of distant ATPase domains in the circadian clock protein KaiC (2022) (2)
- Hidden conformations differentiate day and night in a circadian pacemaker (2021) (2)
- Reconstitution of an intact clock that generates circadian DNA binding in vitro (2020) (2)
- Quantification of circadian interactions and protein abundance defines a mechanism for operational stability of the circadian clock (2021) (2)
- Cancer / Testis Antigen PA SD 1 Silences the Circadian Clock Graphical (2015) (1)
- Conformationally responsive dyes enable protein-adaptive differential scanning fluorimetry (2023) (1)
- An imPERfect link to cancer? (2014) (1)
- Casein Kinase 1 dynamics underlie the PER2 circadian phosphoswitch (2019) (1)
- 1H, 13C, and 15N chemical shift assignments of the FnIII-2 domain from Vibrio cholerae RbmA (2017) (0)
- A Tale of Two CRYS: Identifying the Biochemical Determinants of Thier Differential Regulation of Circadian Timekeeping (2018) (0)
- Fold‐Switching Sets the Stage for Cooperativity and Competition in the Cyanobacterial Circadian Clock (2020) (0)
- Crystal structure of KaiC S431E in complex with foldswitch-stabilized KaiB from Thermosynechococcus elongatus (2017) (0)
- Human Casein Kinase 1 delta (anion-free crystallization conditions) (2020) (0)
- How CRY regulates the clock: structural studies of a dynamic mammalian circadian complex (2020) (0)
- ARNT/HIF transcription factor/coactivator complex (2014) (0)
- Mechanisms of Output Signaling from a Circadian Oscillator (2018) (0)
- 15N-1H ZZ exchange: 15N BMAL1 TAD with CWC27 (2017) (0)
- The time machine: structure-based elucidation of timekeeping mechanisms by the cyanobacterial circadian clock (2018) (0)
- Human Casein Kinase 1 delta Tau mutant (R178C) (2020) (0)
- Free Energy Landscape of Casein Kinase Delta and its Implications for Circadian Rhythm (2020) (0)
- Crystal structure of foldswitch-stabilized KaiB in complex with the N-terminal CI domain of KaiC and a dimer of KaiA C-terminal domains from Thermosynechococcus elongatus (2017) (0)
- A Slow Conformational Sw itch in the BMAL 1 Transactivation Domain Modulates Circadian Rhythms Graphical (2017) (0)
- The tail of cryptochromes: an intrinsically disordered cog within the mammalian circadian clock (2020) (0)
- Frozen in Time - How Phosphorylation Induces Conformational Rearrangement in the Circadian AAA+ ATPase KaiC (2020) (0)
- High resolution structure of mouse Cryptochrome 1 (2017) (0)
- Regulating behavior with the flip of a translational switch (2018) (0)
- Shedding Light on Night Owl Behavior: How the Disordered C-Terminal Tail of CRY1 Modulates Circadian Timekeeping (2018) (0)
- 15N-1H ZZ exchange: 15N BMAL1 TAD at 60C (2017) (0)
- Molecular basis of transcriptional coactivator recruitment by ARNT PAS domains (2008) (0)
- Crystal structure of the N-terminal thioredoxin domain of SasA in complex with the N-terminal CI domain of KaiC from Thermosynchococcus elongatus (2021) (0)
- Fold-Switching Sets the Stage for Cooperativity and Competition in the Cyanobacterial Circadian Clock (2020) (0)
- Regulation of the circadian clock in C. elegans by clock gene homologs kin-20 and lin-42 (2023) (0)
- Extended conformation of nighttime state KaiC (2021) (0)
- Closing the negative feedback loop: a tandem ATPase keeps circadian time by coupling distant enzymatic activities (2022) (0)
- A C2-symmetric state in the AAA+ KaiC hexamer coordinates structural and functional modes within a molecular clock (2022) (0)
- Clock Output Serves Dual Purpose of Gene Regulation and Time Keeping (2020) (0)
- 15N-1H ZZ exchange: 15N BMAL1 TAD at 65C (2017) (0)
- 15N-1H ZZ exchange: 15N BMAL1 TAD with PPIL3 (2017) (0)
- Title Structural basis of the day-night transition in a bacterial circadian clock Permalink (2017) (0)
- Crystal structure of foldswitch-stabilized KaiB in complex with the N-terminal CI domain of KaiC from Thermosynechococcus elongatus (2017) (0)
- Crystal structure of the CRY1-PER2 complex (2020) (0)
- Author response: Dynamics at the serine loop underlie differential affinity of cryptochromes for CLOCK:BMAL1 to control circadian timing (2020) (0)
- Western blot images for Gustafson et al. Figure S2 (2017) (0)
- The tail of cryptochromes: Cogs within mammals’ circadian clock (2021) (0)
- 1H, 13C, 15N backbone chemical shift assignments of mouse BMAL2 transactivation domain (2015) (0)
- UNIVERSITY OF CALIFORNIA SANTA CRUZ UNLOCKING THE THERAPEUTIC POTENTIAL OF AGOUTI SIGNALING PEPTIDE A thesis submitted in partial satisfaction of the requirements for the degree of MASTER OF SCIENCE in CHEMISTRY by (2016) (0)
- Compressed conformation of nighttime state KaiC (2021) (0)
- Backbone 1H, 13C, and 15N Chemical Shift Assignments for C-terminal tail of human CRY1 (2020) (0)
- Modulation of the Circadian Period: Searching for Isoform-Selective Cyclophilin Inhibitors (2018) (0)
- UNIVERSITY OF CALIFORNIA SANTA CRUZ WHEN THE TIME IS RIGHT: REGULATION OF CELL DIVISION IN DROSOPHILA A dissertation submitted in partial satisfaction of the requirements for the degree of DOCTOR OF PHILOSOPHY in MOLECULAR, CELL AND DEVELOPMENTAL BIOLOGY by (2018) (0)
- 15N-1H ZZ exchange: 15N BMAL1 TAD at 55C (2017) (0)
- Extended conformation of daytime state KaiC (2021) (0)
- Isoform-specific C-terminal phosphorylation drives autoinhibition of Casein Kinase 1 (2023) (0)
- Silencing the molecular timekeeper in human cancer (2015) (0)
- Kinetics of Multisite Phosphorylation in the Circadian Clock using Time-Resolved NMR (2018) (0)
- 15N-1H ZZ exchange: 15N BMAL1 TAD at 25C (2017) (0)
- Human Casein Kinase 1 delta Site 2 mutant (K171E) (2020) (0)
- The Clock Inner Workings. Molecular Basis of the Interaction between Casein Kinase 1 Delta and the FASP Region of Period (2021) (0)
- CHRONO participates in multi-modal repression of circadian transcriptional complexes (2022) (0)
- The Role of the CBP Transcriptional Activator in the Circadian Repressive Complex (2018) (0)
This paper list is powered by the following services:
Other Resources About Carrie L. Partch
What Schools Are Affiliated With Carrie L. Partch?
Carrie L. Partch is affiliated with the following schools:
- University of Texas Southwestern Medical Center
- University of California, Santa Cruz
- University of Oxford
- Koç University
- University of California, San Diego
- University of California, Davis
- Oregon Health & Science University
- University of Washington
- University of North Carolina at Chapel Hill
- University of California, San Francisco