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Kise, Y.

Publications and source records attributed to Kise, Y..

3 recordsLinked to original sources

Structure and inhibition mechanism of the helicase-primase complex from human herpesvirus 1

Human herpesviruses (HHVs) are widespread pathogens causing severe diseases, especially in immunocompromised individuals, and are linked to neurodegenerative and autoimmune disorders. Current antiviral therapies primarily target the -subfamily, with limited options for {beta}- and {gamma}-subfamilies. The helicase-primase complex (HPC) is essential for viral DNA replication and represents a key antiviral target, but its structure and inhibition mechanisms were previously unclear. Here, cryo-EM structures of the HHV1 (-subfamily) HPC bound to single-stranded DNA and two clinical inhibitors, amenamevir and pritelivir, are reported. The HPC features flexible helicase and primase modules, with both inhibitors binding a shared allosteric pocket in the helicase module. Structural, biochemical, and molecular dynamics analyses indicate that these inhibitors lock the helicase in an open, inactive conformation. Combined molecular dynamics and fragment molecular orbital analyses explain the -subfamily selectivity and distinct antiviral spectra of these drugs. These findings provide a structural framework to guide the development of novel inhibitors targeting {beta}- and {gamma}-subfamily herpesviruses. SignificanceHerpesviruses are ubiquitous human pathogens responsible for a wide spectrum of diseases, including severe infections in immunocompromised individuals and associations with neurodegenerative and autoimmune disorders. Despite the clinical importance of these viruses, current antiviral therapies are largely limited to the -subfamily, with few effective options for {beta}- and {gamma}-subfamilies. The helicase-primase complex (HPC) is a critical enzyme for viral DNA replication and a validated antiviral target, yet its structural basis and inhibition mechanisms have remained elusive, hindering the rational development of next-generation therapeutics. This study provides the first high-resolution cryo-EM structures of the human herpesvirus 1 (HHV1) HPC bound to single-stranded DNA and two clinically relevant inhibitors, amenamevir and pritelivir. These structures reveal the modular organization of the HPC and identify a shared allosteric pocket where both inhibitors bind. Structural, biochemical, and molecular dynamics analyses demonstrate that these inhibitors lock the helicase in an open, catalytically inactive conformation, thereby blocking ATP binding and halting DNA unwinding. Fragment molecular orbital (FMO) calculations further elucidate the molecular determinants of inhibitor binding, explaining the -subfamily specificity and the distinct antiviral spectra of amenamevir and pritelivir. The integrated approach combining cryo-EM, molecular dynamics, and quantum chemical calculations not only clarifies the mechanism of action of current clinical inhibitors but also establishes a robust framework for the rational design of novel antivirals. By providing detailed insights into the structural and dynamic properties of the HPC and its inhibition, this work paves the way for the development of new drugs with tailored specificity and improved pharmacokinetic properties, potentially expanding therapeutic options to currently untreatable herpesvirus infections. These findings have broad implications for antiviral drug discovery and for understanding the molecular mechanisms underlying DNA replication in herpesviruses.

biochemistry↗

Structure of full-length ERGIC-53 in complex with MCFD2 for cargo transport

ERGIC-53 is a cargo receptor that promotes the transport of certain subsets of newly synthesized secretory proteins and membrane proteins from the endoplasmic reticulum (ER) to the Golgi apparatus (GA)1,2. Despite numerous structural and functional studies since its identification, the overall architecture and mechanism of action of this cargo receptor in its full-length form remain unclear. Here we present cryo-electron microscopy (cryo-EM) structures of full-length ERGIC-53 in complex with its functional partner MCFD2. These structures, in combination with SEC-MALS/SAXS analysis, reveal that ERGIC-53 exists as a homotetramer, not a homohexamer as previously suggested, and comprises a four-leaf clover-like head structure and a long stalk composed of three sets of four-helix coiled-coil followed by a transmembrane (TM) domain. The tetrameric head of ERGIC-53 consists of the vertically assembled carbohydrate recognition domains and the central four-helix coiled-coil. 3D variability analysis visualizes the globally flexible motion of the long stalk and local plasticity of the head region. Notably, MCFD2 has been found to possess a Zn2+ binding site in its N-terminal lid, which appears to modulate cargo binding. Altogether, unique mechanisms of regulated cargo capture and release by ERGIC-53 via the stalk bending and metal binding are proposed.

biochemistry↗

Structural basis for lysophosphatidylserine recognition by GPR34

GPR34 is a recently identified G-protein coupled receptor, which has an immunomodulatory role and recognizes lysophosphatidylserine (LysoPS) as a putative ligand. Here, we report cryo-electron microscopy structures of human GPR34-Gi complex bound with either the LysoPS analogue S3E-LysoPS, which contains an ethoxy group at the sn-1 position, or M1, a derivative of S3E-LysoPS in which oleic acid is substituted with a metabolically stable aromatic fatty acid surrogate. In both structures, the ligand-binding pocket is laterally open toward the membrane, allowing lateral entry of lipidic agonists into the cavity. The amine and carboxylate groups of the serine moiety are recognized by the charged residue cluster, and the aromatic fatty acid surrogate of M1 forms stable hydrophobic interactions with the cavity, thus acting as a superagonist. Molecular dynamics simulations further account for the LysoPS-regioselectivity of GPR34. Thus, using a series of structural and physiological experiments, we provide evidence that chemically unstable 2-acyl LysoPS is the physiological ligand for GPR34, suggesting its short signal duration. Overall, we anticipate the present structures will pave the way for development of novel anticancer drugs that specifically target GPR34.

biochemistry↗