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We used electron cryo-tomography and subtomogram averaging to investigate the structure of complex I and its supramolecular assemblies in the inner mitochondrial membrane of mammals, fungi, and plants. Tomographic volumes containing complex I were averaged at ∼4 nm resolution. Principal component analysis indicated that ∼60% of complex I formed a supercomplex with dimeric complex III, while ∼40% were not associated with other respiratory chain complexes. The mutual arrangement of complex I and III2 was essentially conserved in all supercomplexes investigated. In addition, up to two copies of monomeric complex IV were associated with the complex I1III2 assembly in bovine heart and the yeast Yarrowia lipolytica, but their positions varied. No complex IV was detected in the respiratory supercomplex of the plant Asparagus officinalis. Instead, an ∼4.5-nm globular protein density was observed on the matrix side of the complex I membrane arm, which we assign to γ-carbonic anhydrase. Our results demonstrate that respiratory chain supercomplexes in situ have a conserved core of complex I and III2, but otherwise their stoichiometry and structure varies. The conserved features of supercomplex assemblies indicate an important role in respiratory electron transfer.
Mitochondrial ATP synthases form dimers, which assemble into long ribbons at the rims of the inner membrane cristae. We reconstituted detergent-purified mitochondrial ATP synthase dimers from the green algae Polytomella sp. and the yeast Yarrowia lipolytica into liposomes and examined them by electron cryotomography. Tomographic volumes revealed that ATP synthase dimers from both species self-assemble into rows and bend the lipid bilayer locally. The dimer rows and the induced degree of membrane curvature closely resemble those in the inner membrane cristae. Monomers of mitochondrial ATP synthase reconstituted into liposomes do not bend membrane visibly and do not form rows. No specific lipids or proteins other than ATP synthase dimers are required for row formation and membrane remodelling. Long rows of ATP synthase dimers are a conserved feature of mitochondrial inner membranes. They are required for cristae formation and a main factor in mitochondrial morphogenesis.
In eukaryotic cells, mitochondria host ancient essential bioenergetic and biosynthetic pathways. LYR (leucine/tyrosine/arginine) motif proteins (LYRMs) of the Complex1_LYR-like superfamily interact with protein complexes of bacterial origin. Many LYR proteins function as extra subunits (LYRM3 and LYRM6) or novel assembly factors (LYRM7, LYRM8, ACN9 and FMC1) of the oxidative phosphorylation (OXPHOS) core complexes. Structural insights into complex I accessory subunits LYRM6 and LYRM3 have been provided by analyses of EM and X-ray structures of complex I from bovine and the yeast Yarrowia lipolytica, respectively. Combined structural and biochemical studies revealed that LYRM6 resides at the matrix arm close to the ubiquinone reduction site. For LYRM3, a position at the distal proton-pumping membrane arm facing the matrix space is suggested. Both LYRMs are supposed to anchor an acyl-carrier protein (ACPM) independently to complex I. The function of this duplicated protein interaction of ACPM with respiratory complex I is still unknown. Analysis of protein-protein interaction screens, genetic analyses and predicted multi-domain LYRMs offer further clues on an interaction network and adaptor-like function of LYR proteins in mitochondria.
Für den mitochondrialen ABC-Transporter MDL1 (multidrug resistance like) aus Saccharomyces cerevisiae wurde eine Funktion als intrazellulärer Peptidexporter vorhergesagt. MDL1 ist wahrscheinlich am Export von Degradationsprodukten der m-AAA (matrixoriented ATPases associated with a variety of cellular activities) Protease in den Intermembranraum beteiligt (Young et al., 2001). Das MDL1-Homodimer besteht aus zwei Transmembrandomänen mit jeweils sechs potentiellen α-Helices und zwei Nukleotidbindedomänen. Eine Überexpression des ABC-Transporters in E. coli und L. lactis ist nicht möglich. Nur im homologen Expressionssystem kann eine bis zu 100-fach gesteigerte MDL1-Konzentration in Anwesenheit des induzierbaren GAL1-Promotors gegenüber dem endogenen Protein erreicht werden. Differentielle Zentrifugation, Immunogold-Markierungen und Proteasezugänglichkeitsexperimente zeigen, dass MDL1 ausschließlich in der mitochondrialen Innenmembran lokalisiert ist und die Nukleotidbindedomänen zur Matrix orientiert vorliegen. Mit Hilfe von Edman Sequenzierung des gereinigten His-getaggten MDL1 wurde eine 59 Aminosäuren lange mitochondriale Leitsequenz identifiziert. Die Deletionsvariante MDL1(60-695) wird ausschließlich in den Membranen des Endoplasmatischen Retikulums exprimiert. Ihre Motordomänen liegen zytosolisch orientiert vor. Beide MDL1-Varianten bilden homooligomere Komplexe vergleichbarer Größe und weisen ähnliche ATPase Aktivitäten auf. Die physiologischen Konsequenzen der Lokalisation in unterschiedlichen Membranen wurden in Zellen näher untersucht, deren mitochondrialer ABC-Transporter ATM1 (ABC transporter of mitochondria) deletiert ist. ATM1 ist von essentieller Bedeutung für die Biogenese zytosolischer Eisen/Schwefel-Proteine (Lill und Kispal, 2000). Der mitochondriale MDL1-Komplex kann zum Teil die ATM1-Funktion übernehmen, wohingegen ER-ständiges MDL1, als auch ATP Binde- und Hydrolyse inaktive Mutanten, den Δatm1 Wachstumsphänotyp nicht komplementieren können. Die physiologische Funktion von MDL1 ist somit eng mit der mitochondrialen Innenmembran und der Funktionalität des Proteins verbunden. Durch in vivo Komplementationsstudien wurden zwei mitochondriale ABC-Transporter ABCB10 und Pa_2_9660 aus H. sapiens bzw. P. anserina als funktionelle MDL1-Homologe identifiziert.