8G4L image
Deposition Date 2023-02-10
Release Date 2023-11-01
Last Version Date 2024-11-13
Entry Detail
PDB ID:
8G4L
Title:
Cryo-EM structure of the human cardiac myosin filament
Biological Source:
Source Organism:
Homo sapiens (Taxon ID: 9606)
Method Details:
Experimental Method:
Resolution:
6.40 Å
Aggregation State:
FILAMENT
Reconstruction Method:
SINGLE PARTICLE
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:Myosin-7
Gene (Uniprot):MYH7
Chain IDs:A (auth: BB), B (auth: BA), E (auth: BG), F (auth: BH), G (auth: BI), H (auth: BJ), I (auth: BK), J (auth: BL), K (auth: BM), L (auth: BN), M (auth: BO), N (auth: BP), O (auth: BQ), P (auth: BR), Q (auth: BS), R (auth: BT), S (auth: BU), T (auth: BV), U (auth: BW), V (auth: BX), W (auth: BY), X (auth: BZ), CA (auth: be), DA (auth: bf), IA (auth: bk), JA (auth: bl), PA (auth: AA), QA (auth: AB), TA (auth: AG), UA (auth: AH), VA (auth: AI), WA (auth: AJ), XA (auth: AK), YA (auth: AL), ZA (auth: AM), AB (auth: AN), BB (auth: AO), CB (auth: AP), DB (auth: AQ), EB (auth: AR), FB (auth: AS), GB (auth: AT), HB (auth: AU), IB (auth: AV), JB (auth: AW), KB (auth: AX), LB (auth: AY), MB (auth: AZ), RB (auth: ae), SB (auth: af), XB (auth: ak), YB (auth: al), EC (auth: A), FC (auth: B), IC (auth: G), JC (auth: H), KC (auth: I), LC (auth: J), MC (auth: K), NC (auth: L), OC (auth: M), PC (auth: N), QC (auth: O), RC (auth: P), SC (auth: Q), TC (auth: R), UC (auth: S), VC (auth: T), WC (auth: U), XC (auth: V), YC (auth: W), ZC (auth: X), AD (auth: Y), BD (auth: Z), GD (auth: e), HD (auth: f), MD (auth: k), ND (auth: l)
Chain Length:1935
Number of Molecules:78
Biological Source:Homo sapiens
Polymer Type:polypeptide(L)
Molecule:Myosin light chain 3
Gene (Uniprot):MYL3
Chain IDs:C (auth: BE), D (auth: BF), Y (auth: ba), Z (auth: bb), EA (auth: bg), FA (auth: bh), RA (auth: AE), SA (auth: AF), NB (auth: aa), OB (auth: ab), TB (auth: ag), UB (auth: ah), GC (auth: E), HC (auth: F), CD (auth: a), DD (auth: b), ID (auth: g), JD (auth: h)
Chain Length:1935
Number of Molecules:18
Biological Source:Homo sapiens
Polymer Type:polypeptide(L)
Molecule:Myosin regulatory light chain 2, ventricular/cardiac muscle isoform
Gene (Uniprot):MYL2
Chain IDs:AA (auth: bc), BA (auth: bd), GA (auth: bi), HA (auth: bj), NA (auth: bq), OA (auth: br), PB (auth: ac), QB (auth: ad), VB (auth: ai), WB (auth: aj), CC (auth: aq), DC (auth: ar), ED (auth: c), FD (auth: d), KD (auth: i), LD (auth: j), RD (auth: q), SD (auth: r)
Chain Length:166
Number of Molecules:18
Biological Source:Homo sapiens
Polymer Type:polypeptide(L)
Molecule:Titin
Gene (Uniprot):TTN
Chain IDs:KA (auth: bm), LA (auth: bn), ZB (auth: am), AC (auth: an), OD (auth: m), PD (auth: n)
Chain Length:1935
Number of Molecules:6
Biological Source:Homo sapiens
Polymer Type:polypeptide(L)
Molecule:Myosin-binding protein C, cardiac-type
Gene (Uniprot):MYBPC3
Chain IDs:MA (auth: bo), BC (auth: ao), QD (auth: o)
Chain Length:1935
Number of Molecules:3
Biological Source:Homo sapiens
Ligand Molecules
Primary Citation
Cryo-EM structure of the human cardiac myosin filament.
Nature 623 853 862 (2023)
PMID: 37914935 DOI: 10.1038/s41586-023-06691-4

Abstact

Pumping of the heart is powered by filaments of the motor protein myosin that pull on actin filaments to generate cardiac contraction. In addition to myosin, the filaments contain cardiac myosin-binding protein C (cMyBP-C), which modulates contractility in response to physiological stimuli, and titin, which functions as a scaffold for filament assembly1. Myosin, cMyBP-C and titin are all subject to mutation, which can lead to heart failure. Despite the central importance of cardiac myosin filaments to life, their molecular structure has remained a mystery for 60 years2. Here we solve the structure of the main (cMyBP-C-containing) region of the human cardiac filament using cryo-electron microscopy. The reconstruction reveals the architecture of titin and cMyBP-C and shows how myosin's motor domains (heads) form three different types of motif (providing functional flexibility), which interact with each other and with titin and cMyBP-C to dictate filament architecture and function. The packing of myosin tails in the filament backbone is also resolved. The structure suggests how cMyBP-C helps to generate the cardiac super-relaxed state3; how titin and cMyBP-C may contribute to length-dependent activation4; and how mutations in myosin and cMyBP-C might disturb interactions, causing disease5,6. The reconstruction resolves past uncertainties and integrates previous data on cardiac muscle structure and function. It provides a new paradigm for interpreting structural, physiological and clinical observations, and for the design of potential therapeutic drugs.

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Primary Citation of related structures