About Roy R. Parker
Roy R. Parker was a biochemist.
Roy R. Parker is a biochemist who has been an active investigator in science since the 1970s. He is currently a Distinguished Professor of Chemistry and Biochemistry and Cech-Leinwand Endowed Chair of Biochemistry at the University of Colorado Boulder. Throughout his life, Parker has contributed a vast degree of knowledge to research and studies of biochemistry. His current focus includes the biogenesis, function, and degradation of multiple forms of RNA in eukaryotes. Parker aims to use his research to understand how various diseases and pathologies result from abnormalities in RNA. In 2012, Parker was elected to the National Academy of Sciences in Biochemistry.
Education To start his career, Parker attended Carnegie Mellon University in Pittsburgh, Pennsylvania, where he received his Bachelor of Science degree in chemistry. After graduating from Carnegie Mellon in 1979, he moved on to receive his PhD in genetics with Christine Guthrie at the University of California, San Francisco, California in 1985. From 1985-1987, Parker worked in laboratories for his postdoctoral degree at both the University of California, San Francisco, and the University of California, San Diego. Later, Parker was a postdoctoral fellow with Allan Jacobson at the University of Massachusetts Medical School in Worcester, MA from 1988-89.
Career Parker began his laboratory at the University of Arizona in 1989, and was a professor molecular and cellular biology until 2012 when he moved to be a professor at the University of Colorado Boulder.
A Turnover Pathway for Both Stable and Unstable mRNAs in Yeast: Evidence for a Requirement for Deadenylationâ(1993) The purpose of this investigation was to trace the pathways involved in mRNA turnover in yeast. To do so, Parker and Decker conducted experimentation in four genes by analyzing the degradation of nascent transcripts. They found a connection between both deadenylation rate of mRNA and stability of oligo(A) with mRNA half-lives. More specifically, they looked at the effects of RNA secondary structures and realized that after deadenylation, those without the 5â sequence began to aggregate. After evaluating these results, they concluded that deadenylation contributes to changes in mRNA, creating an mRNA decay pathway.
âDegradation of mRNA in Eukaryotesâ(1995) With this research study, Parker and Beelman investigated the various pathways of degradation to several subtypes of mRNA. They offer evidence that there is a connection between decay rate and turnover pathways of mRNA. After developing conclusions from much observation and research in this study, Parker and Beelman hoped to pinpoint the genetic products that control nucleolytic events and promote degradation pathways.
âRecognition of Yeast mRNAs As âNonsense Containingâ Leads to Both Inhibition of mRNA Translation and mRNA Degradation: Implications for the Control of mRNA Decappingâ(1999) This paper examined promoters for decapping and how the promoters impede the translation and destruction of mRNA.
âDecapping and Decay of Messenger RNA Occur in Cytoplasmic Processing Bodiesâ(2003) In 2003, Parker and Sheth concentrated on deadenylation, decapping, and exonucleolytic decay in this publication. They studied yeast models and proposed a model that P bodies are the sites of degradation in the cell and contain intermediates of mRNA degradation. With this information, they concluded that mRNAs move between polysomes and P bodies, and this is a critical aspect of mRNA metabolism in the cytoplasm.
âCytoplasmic Degradation of Splice-Defective Pre-mRNAs and Intermediatesâ(2003) With this publication, Hilleren and Parker discovered that the buildup of certain intermediates in a Dbr1p-dependent pathway indicates that same pathway regulates pre-mRNA splicing.
âGeneral Translational Repression by Activators of mRNA Decappingâ(2005) Coller and Parker singled out activators for decapping mechanisms in this study. These decapping activators inhibit translation and stimulate the formation of P bodies. Using staining techniques to identify the activity of decapping activators, they were successfully able to conclude that there is a mechanism which signals mRNAs for decapping and therefore restricts mRNAs from going through translation.
âMovement of Eukaryotic mRNAs between Polysomes and Cytoplasmic Processing Bodiesâ(2005) Throughout this paper, Parker and two other scientists, Brengues and Teixeira, demonstrated that mRNAs migrate between polysomes and cytoplasmic processing bodies as a form of mRNA packing.
âEndonucleolytic Cleavage of Eukaryotic mRNAs with Stalls in Translation Elongationâ(2006) Doma and Parker identified the process of non-stop decay by which special proteins are able to distinguish stalled mRNA translation, and then initiate the process of endonucleolytic cleavage.
âP Bodies and the Control of mRNA Translation and Degradationâ(2007) This publication focuses on eukaryotes and the formation of P bodies due to aggregations of mRNAs that failed to undergo translation. P bodies are linked to maternal and neuronal mRNA granules. This link led to uncovering of the relationship between polysomes and mRNAs within P bodies with regards to cytoplasmic mRNA activity. Parker and Shethâs prime conclusion from this publication is that translation is inhibited, and decay is promoted when mRNA-specific regulatory factors, such as miRNAs and RISC, engage with P bodies.
âEukaryotic Stress Granules: The Ins and Outs of Translationâ(2009) The focus of this publication is the formation of stress granules due to the bodyâs stress response which prevents translation from occurring. Parker and Buchan researched that stress granules cause many problems to forms of RNA, particularly mRNAs, by making them less stable and by preventing their translation. They were able to conclude that stress granules may communicate with P bodies to create even more harmful effects to the function of mRNA.
âSkill Development in Graduate Educationâ(2012) This unique paper does not discuss biochemical processes but rather explores the impacts of proper education in the field of biochemistry. Parker demonstrates the elevated dropout rates in students pursuing graduate degrees and analyzes the necessary steps taken and skills acquired for a student to succeed.
âAnalysis of Double-Stranded RNA from Microbial Communities Identifies Double-Stranded RNA Virus-Like Elementsâ(2014) Decker and Parker suggested from this publication that investigating double-stranded RNAs could potentially lead to a multitude of discoveries about the genetics of viruses and other microbes.
âThe Link between Adjacent Codon Pairs and mRNA Stabilityâ(2017) In 2017, Harigaya and Parker found that there was a connection between the stability of mRNA and codon pairs that act to suppress certain functions in the codon-mediated gene regulation.
âTranscriptome-Wide Comparison of Stress Granules and P Bodies Reveals that Translation Plays a Major Role in RNA Partitioningâ(2019) Matheny, Rao, and Parker collaborated to identify that translation is an extremely important process in the formation of P bodies and stress granules, which is often suppressed during stress.
Honors and awards Parker has received many honors and awards, including the following: 2018, Ada Doisy Lectures in Biochemistry, University of Illinois at Urbana 2018, Keynote Speaker, Ionis/Nature Conference on RNA Biology at La Jolla, California 2018, Distinguished Visitor Lecture Series, Max-Planck Institute of Biochemistry, Germany 2018, Keynote Speaker, Center for RNA Biomedicine Symposium, University of Michigan 2018, Keynote Speaker, 3rd International Brainstorm Symposium, University of Florida 2012, Member, National Academy of Sciences 2003, Regentsâ Professor, University of Arizona 1979, Regentsâ Fellowship, University of California at San Francisco
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Who was Roy R. Parker?
American biochemist
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Roy R. Parker was a biochemist.
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APA: Biography.guide. (2026). Roy R. Parker. https://biography.guide/roy-r-parker/
MLA: "Roy R. Parker." Biography.guide, https://biography.guide/roy-r-parker/.
Chicago: "Roy R. Parker." Biography.guide. https://biography.guide/roy-r-parker/.
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