A First-In-Class Broad Spectrum Inhibitor of Copper Exporting P1B-type ATPases
Shanbhag, V.; Dinguyella, S. A.; Gudekar, N.; Conrad, K.; Azubuogu, C.; Probst, C.; Ralle, M.; Mediavilla, M. G.; Cricco, J. A.; Garza, N. M.; Gohil, V. M.; Peck, S.; Kumar, S.; Natarajan, A.; Horadigala-Gamage, M.; Meloni, G.; Singh, K.; Petris, M. J.
Show abstract
Copper (Cu) transporting ATPases represent a highly conserved subclass of P-type ATPases with critical roles in Cu export and metalloenzyme synthesis. Despite their important biological roles and association with a wide range of human diseases, no high-affinity small-molecule inhibitors have been described. Here, we identify MKV3 as a first-in-class inhibitor of Cu-transporting P-type ATPases that targets a conserved Cu+ entry site to the translocation pathway. In silico docking against the Xenopus ATP7B structure revealed a highly conserved pocket suitable for pharmacological inhibition. MKV3 bound human ATP7A and ATP7B with nanomolar affinity, competed with N-terminal metal-binding domains for access to the Cu+ entry site, and selectively inhibited Escherichia coli CopA ATPase activity and Cu+ transport. Mechanistically, MKV3 blocked chaperone-mediated Cu+ delivery to the intramembranous CPC site of CopA that is essential for its transport function. We further identified a single charged P-domain residue that governed MKV3 affinity and potency across species. Functionally, MKV3 phenocopied the genetic loss of Cu+-ATPases in bacteria, fungi, plants, zebrafish, and mammals, impairing copper-dependent enzymes, transporter trafficking, and copper tolerance. These findings establish a conserved, druggable vulnerability in Cu+-ATPases and introduce MKV3 as a broadly active chemical tool to modulate copper homeostasis across biological kingdoms. Significance StatementCopper-transporting P1B-type ATPases are essential for copper homeostasis in all domains of life, yet have lacked pharmacological inhibitors. This work identifies MKV3 as the first small-molecule inhibitor of Cu+-ATPases in bacteria, fungi, plants and animals, and defines a conserved, druggable Cu+ entry pocket that governs metal delivery to the transmembrane pathway. MKV3s ability to potentiate copper-mediated killing in multidrug-resistant bacterial pathogens highlights its potential as an antimicrobial adjuvant, while its attenuation of mammalian ATP7A/B function offers promise in oncology and copper-related diseases. Collectively, these findings establish a new tool for targeting of Cu+-ATPases with wide-ranging applications across biological systems.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Mapping the genetic landscape of iron metabolism uncovers the SETD2 methyltransferase as a modulator of iron flux. 95%
- Structural insights into TRAP association with ribosome-Sec61 complex, and translocon inhibition by a CADA derivative 95%
- Mechanistic insights into intramembrane proteolysis by E. coli site-2 protease homolog RseP 94%
Similar papers in this journal
- A widespread family of ribosomal peptide metallophores involved in bacterial adaptation to copper stress 95%
- Cleavage cascade of the sigma regulator FecR orchestrates TonB-dependent signal transduction 95%
- Cytosolic iron-sulfur protein assembly system identifies clients by a C-terminal tripeptide 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.