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Biology subjects

Rockfield, S. M.

Publications and source records attributed to Rockfield, S. M..

2 recordsLinked to original sources

Protein domain characterization reveals human MIC60 tolerates loss of helical bundle domain

The mitochondrial contact site and cristae organizing system (MICOS) is essential for cristae junction formation and inner mitochondrial membrane architecture. To define how MICOS integrity is established and maintained, we generated conditional deletion models of Immt (encoding MIC60), a core MICOS subunit, in tissue-specific settings and in cultured cells. Liver-specific deletion of Immt in mice induced profound defects in mitochondrial ultrastructure and function, establishing MIC60 as essential for mitochondrial integrity. Notably, despite the severity of the defects, we did not detect increased apoptosis in liver tissue or in cells. To directly link MIC60 structure to its function, we performed a systemic structure-function analysis of human MIC60 using domain-specific deletion mutants expressed in Immt-deleted cells. We identified that the transmembrane, coiled-coil, and mitofilin domains are required for MICOS assembly, mitochondrial morphology, and respiratory function. Unexpectedly, deletion of the predicted helical bundle (a region spanning 229 amino acids) substantially restored mitochondrial structure and function, nearly matching full-length MIC60. A mutation (K299E) associated with human disease within this domain similarly preserved most MIC60-dependent functions. Together, these results establish MIC60 as a non-redundant regulator of mitochondrial architecture while revealing that a large predicted structural domain is largely dispensable for MIC60s core functions, refining current models of MICOS organization and uncovering unexpected modularity within MIC60.

cell biology↗

Inducible genetic ablation of Immt induces a lethal disruption of the MICOS complex

The mitochondrial contact site and cristae organizing system (MICOS) is important for cristae junctions (CJ) formation and for maintaining inner mitochondrial membrane (IMM) architecture. As the largest member, MIC60 is the primary scaffold protein for this complex. While MIC60 has been well studied in yeast and cell culture models, its function in mammals is poorly understood. To address this, we developed a mouse model conditionally deleting Immt (which encodes MIC60) and found that global Immt deletion disrupted the MICOS complex and resulted in lethality within 9 days of tamoxifen treatment. Pathologically, these mice display intestinal defects consistent with paralytic ileus, resulting in dehydration. We also identified bone marrow hypocellularity in tamoxifen-treated mice. However, bone marrow transplants from ImmtWT mice failed to rescue survival. Altogether, this novel mouse model demonstrates the importance of MIC60 in vivo, in both hematopoietic and non-hematopoietic tissues, and provides a valuable resource for future mechanistic investigations into the MICOS complex. Such investigations could include an in vivo structure-function analysis of MIC60 functional domains, with characterizations that are relevant to human diseases.

physiology↗