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Novel interaction with PSMD9 regulates DNAJA1 turnover and mitochondrial polarity
C Merlyn Anthony1, Mahalakshmi Harish2, Joel Christie3
1Protein Interactome Lab for Structural and Functional Biology, Advanced Centre for Treatment Research and Education in Cancer, Tata Memorial Centre, Navi Mumbai, 410210, Maharashtra, India; Homi Bhabha National Institute, Training School Complex, Anushaktinagar, Mumbai, 400094, Maharashtra, India.
Abstract:
Understanding protein-protein interactions in cancer is essential for the development of innovative therapeutic strategies. Chaperone proteins often form cooperative networks that regulate key cellular processes, many of which are disrupted in cancer, offering potential targets for intervention. PSMD9, a chaperone involved in 26S proteasome assembly, is frequently overexpressed in various cancers and is linked to resistance to chemotherapy and radiotherapy. It also plays roles in intracellular signaling. Mass spectrometry analysis of proteins co-purified with PSMD9 revealed a subset containing a specific EXKK motif, suggesting potential direct interactions. Among these was DNAJA1, a chaperone involved in mitochondrial protein transport. This study explores and characterizes the interaction between PSMD9 and DNAJA1. The interaction was confirmed through in vitro binding assays using purified proteins and further validated by introducing mutations in DNAJA1 that disrupted the binding. Co-immunoprecipitation from MCF7 breast cancer cells supported the in-cell interaction. Upon proteasomal inhibition, interaction between PSMD9 and DNAJA1 was enhanced in MCF7 cells, correlating with increased DNAJA1 stability. Additionally, PSMD9 depletion led to elevated mitochondrial membrane potential, linking this interaction to mitochondrial regulation. Thus, beyond its known role in cytoplasmic proteostasis, PSMD9 may influence mitochondrial homeostasis via DNAJA1.
Insights
PSMD9, a cancer-overexpressed chaperone, interacts with DNAJA1, a mitochondrial chaperone. This interaction influences mitochondrial homeostasis and DNAJA1 stability, offering new therapeutic targets for cancer treatment.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- Protein-protein interactions are crucial for cancer therapy development.
- Chaperone proteins regulate cellular processes, with dysregulation common in cancer.
- PSMD9 (proteasome subunit non- ATPase 9) is overexpressed in cancers, linked to treatment resistance and signaling.
Purpose of the Study:
- To investigate and characterize the interaction between PSMD9 and DNAJA1.
- To explore the functional implications of the PSMD9-DNAJA1 interaction in cancer cells.
Main Methods:
- Mass spectrometry to identify PSMD9 interacting partners.
- In vitro binding assays with purified proteins.
- Mutagenesis of DNAJA1 to disrupt binding.
- Co-immunoprecipitation in MCF7 breast cancer cells.
- Assessment of mitochondrial membrane potential upon PSMD9 depletion.
Main Results:
- Identified DNAJA1 as a PSMD9 interacting partner via EXKK motif.
- Confirmed direct PSMD9-DNAJA1 interaction in vitro and in cells.
- Observed enhanced PSMD9-DNAJA1 interaction and DNAJA1 stability upon proteasomal inhibition.
- Demonstrated that PSMD9 depletion increases mitochondrial membrane potential.
Conclusions:
- PSMD9 interacts with DNAJA1, influencing its stability and cellular localization.
- The PSMD9-DNAJA1 interaction plays a role in regulating mitochondrial homeostasis.
- PSMD9 may impact mitochondrial function beyond its known role in proteasomal activity, presenting novel therapeutic avenues.
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