Dynamics of p53 tetramers in live single cells

Dynamics of p53 tetramers in live single cells

by Giorgio Gaglia

Browse books you can read free on Readfeed

No club is reading this yet — be the first to start one

Start a club free
About
Protein homo-oligomerization is the process through which identical peptides bind together to form higher order complexes. Self-interactions in many cases are constitutive and stable, used as building blocks for biological structures, such as rings, filaments and membranes. Further, homo-oligomerization can also be a regulatory process that influences the proteins' function such as change in transcriptional activities for transcription factors. Innovative methods to measure oligomerization in live cells are needed in order to understand regulation and function of homooligomerization in the native cellular context. This thesis examines the case of the tumor suppressor p53, whose homo-tetramerization greatly influences its activity as a transcription factor. We develop methods to quantify p53's self-interaction in individual living cells and follow it in time after DNA damage. The two methods we developed have complementary qualities and different applications. We first use fluorescent correlation spectroscopy to study the molecular events occurring in the first three hours of the p53 in response to double strand breaks. We find that in the absence of stress p53 is present in a mixture of, monomers, dimers and tetramers. When damage is sensed, oligomerization is rapidly induced and nearly all p53 is found bound in tetramers. We combine our data with a mathematical framework to propose the existence of a dedicated mechanism triggering p53 oligomerization independently of protein stabilization. Next, we use bimolecular fluorescent complementation to probe for tetramerization in the longer timescales of p53's response to ultraviolet radiation. In this context we find that even though the rate of p53 accumulation increases with the dose of radiation, p53 tetramers are formed at a steady rate. We hence propose the existence of an inhibitory mechanism that prevents the oligomerization reaction from following a linear input-output relation. We identify ARC, a known cofactor of p53, as part of this inhibitory mechanism. Downregulation of ARC restore the linear relation between to total and tetrameric p53. Finally, in both experimental setups higher oligomerization lead to an increase in p53 activity, underscoring the connection between regulation of oligomerization and the transcriptional activity of p53 in cancer cells. Collectively, this work emphasizes the importance of precise measurements to investigate the regulation and function of higher order complexes and provides generally applicable methods to quantify homo-oligomerization in live single cells.

Discussion questions for Dynamics of p53 tetramers in live single cells

Bring these to your book club — or discuss them with readers on Readfeed.

  1. 1

    How does the author use the concept of protein homo-oligomerization not just as a biological mechanism, but as a metaphor for how individual units within a larger system collaborate to create a coordinated response?

  2. 2

    In what ways does the behavior of p53—shifting from independent monomers and dimers to a unified tetramer only when facing cellular stress—mirror how human communities or teams mobilize during a crisis?

  3. 3

    The thesis highlights the discovery of specific inhibitory mechanisms that prevent p53 tetramerization from following a simple, linear input-output relation; how do you see this principle of controlled, non-linear reactions operating in other complex systems, whether biological, technological, or social?

Discuss Dynamics of p53 tetramers in live single cells with other readers

Join or start a book club for Dynamics of p53 tetramers in live single cells on Readfeed. Live chat, shared reading progress, and AI discussion questions — free to get started.

Frequently asked questions

How do I join a book club for Dynamics of p53 tetramers in live single cells?

Sign up free on Readfeed, then browse public clubs or start your own club with Dynamics of p53 tetramers in live single cells as the current read. Invite friends with a share link and discuss together with live chat and AI discussion questions.

Can I discuss Dynamics of p53 tetramers in live single cells with other readers online?

Yes. Readfeed book clubs let you chat live, share progress, and join discussions about Dynamics of p53 tetramers in live single cells with readers worldwide — whether your club is virtual, in-person, or hybrid.

Is Readfeed free?

Yes. Creating an account and joining book clubs is free. Sign up to find readers who love the same books and start discussing today.