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Mitochondrial Processes during Early Development of Dictyostelium discoideum: From Bioenergetic to Proteomic Studies
Monika Mazur1, Daria Wojciechowska1,2, Ewa Sitkiewicz3
1Institute of Molecular Biology and Biotechnology, Faculty of Biology, Adam Mickiewicz University, 61-614 Poznan, Poland.
Abstract:
The slime mold Dictyostelium discoideum's life cycle includes different unicellular and multicellular stages that provide a convenient model for research concerning intracellular and intercellular mechanisms influencing mitochondria's structure and function. We aim to determine the differences between the mitochondria isolated from the slime mold regarding its early developmental stages induced by starvation, namely the unicellular (U), aggregation (A) and streams (S) stages, at the bioenergetic and proteome levels. We measured the oxygen consumption of intact cells using the Clarke electrode and observed a distinct decrease in mitochondrial coupling capacity for stage S cells and a decrease in mitochondrial coupling efficiency for stage A and S cells. We also found changes in spare respiratory capacity. We performed a wide comparative proteomic study. During the transition from the unicellular stage to the multicellular stage, important proteomic differences occurred in stages A and S relating to the proteins of the main mitochondrial functional groups, showing characteristic tendencies that could be associated with their ongoing adaptation to starvation following cell reprogramming during the switch to gluconeogenesis. We suggest that the main mitochondrial processes are downregulated during the early developmental stages, although this needs to be verified by extending analogous studies to the next slime mold life cycle stages.
Insights
This study reveals significant bioenergetic and proteomic changes in Dictyostelium discoideum mitochondria during early development. Mitochondrial function is downregulated as the slime mold adapts to starvation and transitions to multicellularity.
Area of Science:
- Cell Biology
- Biochemistry
- Developmental Biology
Background:
- Dictyostelium discoideum offers a model for studying mitochondrial dynamics.
- Its life cycle involves unicellular and multicellular stages.
- Starvation induces developmental transitions.
Purpose of the Study:
- To investigate bioenergetic and proteomic differences in mitochondria during early Dictyostelium discoideum development.
- To compare mitochondria from unicellular (U), aggregation (A), and streams (S) stages.
Main Methods:
- Oxygen consumption measurements using a Clarke electrode.
- Comparative proteomic analysis of isolated mitochondria.
- Analysis of mitochondrial coupling capacity and spare respiratory capacity.
Main Results:
- Decreased mitochondrial coupling capacity in stage S cells.
- Reduced mitochondrial coupling efficiency in stages A and S.
- Significant proteomic alterations in key mitochondrial proteins during the U to multicellular transition.
- Observed changes linked to starvation adaptation and gluconeogenesis.
Conclusions:
- Mitochondrial function appears downregulated during early Dictyostelium discoideum development.
- Proteomic shifts reflect adaptation to starvation and metabolic reprogramming.
- Further studies are needed to confirm findings in later life cycle stages.
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