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Brock University

Interactions with bioenergetics by the mitochondria-targeted anti-apoptotic imidazole fatty acid derivative ‘TPP-IOA’.

Abstract

dc:description.abstract

The mitochondrial pathway of apoptosis contributes to cell death and tissue degeneration in a variety of human diseases. Targeting the molecular events of this pathway represents a promising therapeutic strategy under pathological scenarios, particularly in tissues with limited regenerative capability (e.g. brain, heart). Recently, the small molecule ‘TPP-IOA’ was designed to target mitochondria and therein inhibit the peroxidase activity of cytochrome c that promotes activation of the apoptotic death pathway (Atkinson et al., Nat. Commun. 2011; 2:497). Therefore, TPP-IOA holds promise as a potential therapeutic agent in many pathological scenarios of cell loss. However, TPP-IOA’s target protein and organelle perform critical functions in aerobic ATP production via oxidative phosphorylation, and yet little is known about TPP-IOA’s interaction with mitochondrial energetics. This is an important consideration for TPP-IOA’s potential future therapeutic utility, as avoiding interference to mitochondrial energetics will be essential for many target cell types that feature a high rate of oxidative phosphorylation (e.g. neurons, cardiomyocytes). Using the purified protein target, isolated organelle target, and live cultured cells, this thesis investigated TPP-IOA’s interaction with fundamental components of energetics-related mitochondrial biology. Assessments with pure cytochrome c revealed that TPP-IOA can inhibit the respiration-associated reduction activity of cytochrome c, and that this occurred at concentrations marginally higher than those required to inhibit the protein’s pro-apoptotic peroxidase activity. In isolated rat liver mitochondria, TPP-IOA impaired oxidative phosphorylation via inhibition of both ADP-phosphorylating-respiration and FCCP-uncoupled respiration, and stimulation of non-phosphorylating respiration. Critically, TPP-IOA was unable to inhibit pro-apoptotic peroxidase activity at concentrations that avoided interference to oxidative phosphorylation, suggesting it may be unable to perform its desired pharmacological activity without causing toxicity to mitochondrial energetics. In live cultured cells, TPP-IOA caused effects associated with impaired oxidative phosphorylation, including a collapsed mitochondrial membrane potential, fragmented mitochondrial network morphology, and apparent loss of mitochondria. Furthermore, TPP-IOA effectively inhibited apoptotic death under lethal conditions in cells that preferentially utilized anaerobic glucose metabolism, but not in cells manipulated to be heavily reliant on oxidative phosphorylation and thus more sensitive to the perturbations to mitochondrial energetics. Altogether, these findings indicate that relative cellular dependence on oxidative phosphorylation is a critical factor influencing TPP-IOA’s pharmacological efficacy. Furthermore, potential therapeutic applications may be limited to pathologies involving predominantly less aerobic tissues/cell types or depressed aerobic metabolism. Additionally, these findings have broader implications for mitochondrial medicine based on similar mitochondrial drug targeting strategies.

Degree

thesis:*
Name thesis:degree_name
M.Sc. Biological Sciences
Level thesis:degree_level
Masters
Discipline thesis:degree_discipline
Faculty of Mathematics and Science
Department dc:contributor.department
Department of Biological Sciences
Grantor
Brock University
Year dc:date.issued
2016

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Maddalena, Lucas

Subjects

dc:subject × 5

Rights

Language dc:language.iso
eng

Identifiers

dc:identifier.*
Handle dc:identifier.uri
http://hdl.handle.net/10464/10675
OAI identifier oai:identifier
oai:brocku.scholaris.ca:10464/10675

Chain of custody

source
Harvested from
Brock University
Base URL
brocku.scholaris.ca/server/oai/request
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Maddalena, Lucas. Interactions with bioenergetics by the mitochondria-targeted anti-apoptotic imidazole fatty acid derivative ‘TPP-IOA’.. Masters thesis, Brock University, 2016. http://hdl.handle.net/10464/10675