Czechia

Intratumoral heterogeneity in cellular response to p53 and ISR activation

Masaryk University

Not stated

Location
Brno, United Kingdom, United Kingdom
Funding
Funded PhD Project (Students Worldwide)
Application deadline
30 November 2026

About the project

About the Project Doctoral study program: Biomedical Sciences Form: doctoral (present) Department: Department of Biology Supervisor: Zdenek Andrysik, Ph.D. Ph.D. position: Intratumoral heterogeneity in cellular response to p53 and ISR activation (Vnitřní nádorová heterogenita v buněčné odpovědi na aktivaci p53 a ISR) Annotation: The most frequently mutated tumor suppressor gene in human cancers is TP53, which encodes transcription factor p53. Induced by various types of cellular stress, p53 transactivates a broad range of genes involved in numerous anti-cancer programs including cell cycle arrest, DNA repair, senescence, and apoptosis. However, targeted induction of p53 by small molecule inhibitors of a key upstream negative regulator MDM2 leads in most cancer types to a reversible proliferation block, while the therapeutically desirable elimination of cancer cells by apoptosis is limited at best. Recently, we identified a novel regulatory mechanism within the p53 network (Andrysik et al., Nature Communications, 2022) responsible for restraining the apoptotic response upon p53 activation. In this scenario, p53 activity maintains eukaryotic translation initiation factor eIF2a dephosphorylated and fully functional. Severing such negative feedback loop pharmacologically by eIF2a inhibitors leads to rapid onset of apoptosis in cancer cells in vitro and stalled tumor growth and animal survival in vivo. The key shortcoming of the combined therapy resides in insufficient apoptotic response in treated tumors. Preliminary immunohistological (IHC) analysis of colorectal carcinoma (CRC) xenograft tumors revealed variable induction of p53 and ISR in individual cells suggesting existence of treatment-resistant subpopulations. We hypothesize that tumor cell subpopulations unsusceptible to targeted pharmacological activation of p53 and ISR pathways bear distinct characteristics which can be explored therapeutically . Therefore, we propose two complementary strategies to test our hypothesis: First, we will characterize activity of both targeted pathways in individual tumor cells by transcriptome analysis . Numerous factors impinge drug efficiency in vivo and no available models recapitulate complexity of tumors developing at specific organismal locations. We hypothesize that tumor subpopulations resistant to MDM2 and eIF2a inhibitors may be targeted pharmacologically to improve the overall response to combination treatment . Therefore, we will perform a single-cell RNA-seq (scRNA-seq) in orthotopic CRC tumors following combined treatment with MDM2 and eIF2a inhibitors. Next, we will score p53 and ISR activity in individual tumor cell clusters and characterize in detail cellular processes and pathway activities in both responding and non-responding subpopulations using bioinformatical tools for transcriptome interpretation. Finally, we will propose and test strategies for sensitizing resistant populations both in vitro and in vivo. Second, we will map p53 and ISR responses over the treatment course . It is unclear whether the key resistance mechanisms are either innate to the tumor or develop as a response to the treatment. We hypothesize that tumor subpopulations resistant to MDM2/eIF2a inhibitors will bear distinct characteristics in short-time and long-time treatments . To elucidate changes in tumor subpopulations and to define dynamics of resistance development, we will perform both IHC and spatial transcriptomics analyses of orthotopic CRC tumors treated with a combination of MDM2 and eIF2a inhibitors in a single dose and over a two to four week-long treatment regimen. Next, we will test strategies preventing resistance development and increase efficiency of the combined treatment. Funding of the research: Primary funding for the proposed work is secured by AZV award NW25-03-00134 to the supervisor. Information on funding PGS positions: The program requires that all PhD students have some means of financial support of min. 25 000 CZK per month. This is often a combination of various sources (grants, scholarship etc.) Requirements for the student according to the Doctoral Board: The student's minimum publication activity within the course of study is one first-author publication with an IF value above the median in the field or 2 first-author publications in journals with an IF value in the 3rd quartile in the field (Q3). A condition for successful completion of the studies is also a foreign internship of at least 1 month, which is an inseparable part of the studies. As part of their studies, students will also participate in the teaching. Additional reading: https://pmc.ncbi.nlm.nih.gov/articles/PMC9715646/

Research areas

CzechiaCancerBiologyCellBiologyBiologicalSciencesMedicineIntratumoralheterogeneityincellularresponsetop53andISRactivation