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  <title><![CDATA[PhD Defense by Zahra Nassiri Toosi]]></title>
  <body><![CDATA[<p>In partial fulfillment of the requirements for the degree of</p>

<p>&nbsp;</p>

<p>Doctor of Philosophy in Biology</p>

<p>In the</p>

<p>School of Biological Sciences</p>

<p>&nbsp;</p>

<p><strong>Zahra Nassiri Toosi</strong></p>

<p>&nbsp;</p>

<p>Will defend her dissertation</p>

<p>&nbsp;</p>

<p><strong>Functional roles and underlying mechanism of site-specific N-terminal phosphorylation in a heterotrimeric G protein gamma subunit</strong></p>

<p>&nbsp;</p>

<p>Tuesday, April 13<sup>th</sup>, 2021</p>

<p>1:00 PM</p>

<p>&nbsp;</p>

<p><a href="https://nam12.safelinks.protection.outlook.com/?url=https%3A%2F%2Fbluejeans.com%2F4537128340&amp;data=04%7C01%7Ctatianna.richardson%40grad.gatech.edu%7Cc440543d85114ff973f908d8f390f03d%7C482198bbae7b4b258b7a6d7f32faa083%7C0%7C0%7C637527151136344093%7CUnknown%7CTWFpbGZsb3d8eyJWIjoiMC4wLjAwMDAiLCJQIjoiV2luMzIiLCJBTiI6Ik1haWwiLCJXVCI6Mn0%3D%7C1000&amp;sdata=di4pf9qvXCTSRBx6aN9TxxHqKApyy%2BKVMuqLyyjsNlk%3D&amp;reserved=0" target="_blank">https://bluejeans.com/4537128340</a></p>

<p>&nbsp;&nbsp;<strong>Thesis Advisor:</strong></p>

<p>Dr. Matthew Torres, Ph.D.</p>

<p>School of Biological Sciences</p>

<p>Georgia Institute of Technology</p>

<p>&nbsp;</p>

<p><strong>Committee Members:</strong></p>

<p>Dr. Liang Han, Ph.D.</p>

<p>School of Biological Sciences</p>

<p>Georgia Institute of Technology</p>

<p>&nbsp;</p>

<p>Dr. Brian Hammer, Ph.D.</p>

<p>School of Biological Sciences</p>

<p>Georgia Institute of Technology</p>

<p>&nbsp;</p>

<p>Dr. Amit Reddi, Ph.D.</p>

<p>School of Chemistry and Biochemistry</p>

<p>Georgia Institute of Technology</p>

<p>&nbsp;</p>

<p>Dr. Randy Hall, Ph.D.</p>

<p>Department of Pharmacology and Chemical Biology</p>

<p>Emory University School of Medicine</p>

<p>&nbsp;</p>

<p>ABSTRACT: Heterotrimeric G-proteins (consisting of Ga, Gb, and Gg subunits) transduce extracellular signals such as hormones and neurotransmitters into intracellular responses that enable cells to communicate with their environment. Dysregulation of G-protein signaling pathways have significant implications in cardiovascular disease, diabetes, and cancer. Therefore, understanding the underlying signaling and regulatory mechanisms of the G-protein signaling systems is of prime importance. While several regulatory roles have been associated with Ga and Gb subunits, Gg subunits, the smallest components of the heterotrimeric G-protein complex, have been long recognized solely as membrane anchors for Gb subunits. Here, I will demonstrate a novel regulatory role for Gg subunits that is mediated through combinatorial phosphorylation of their intrinsically disordered N-terminal (Nt) tails. Using the yeast model system, I show that the Gg subunit (Ste18) undergoes multi-site phosphorylation within its disordered Nt tail in response to a range of different stimuli, such as G-protein activation and cellular stress. Phosphorylation exhibits inter-site interactivity that is controlled by multiple kinases that produce differential effects on the structure and function of Ste18-Nt subunits and output from the G protein signaling pathway. Taken together, my work sheds light on a new multi-site phosphorylation code in Gg subunits that facilitates their function as governors of G-protein signaling. Similar such codes have been described for other important proteins including histones, RNA polymerases, and G protein coupled receptors, thus placing Gg subunits among the list of intrinsically disordered proteins that exploit combinatorial post-translational modification to govern signaling pathway outputs.</p>
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