Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Kimberly Kajihara is active.

Publication


Featured researches published by Kimberly Kajihara.


Nature | 2015

Novel antibody–antibiotic conjugate eliminates intracellular S. aureus

Sophie M. Lehar; Thomas H. Pillow; Min Xu; Leanna Staben; Kimberly Kajihara; Richard Vandlen; Laura DePalatis; Helga Raab; Wouter L. W. Hazenbos; J. Hiroshi Morisaki; Janice Kim; Summer Park; Martine Darwish; Byoung-Chul Lee; Hilda Hernandez; Kelly M. Loyet; Patrick Lupardus; Rina Fong; Donghong Yan; Cecile Chalouni; Elizabeth Luis; Yana Khalfin; Emile Plise; Jonathan Cheong; Joseph P. Lyssikatos; Magnus Strandh; Klaus Koefoed; Peter S. Andersen; John A. Flygare; Man Wah Tan

Staphylococcus aureus is considered to be an extracellular pathogen. However, survival of S. aureus within host cells may provide a reservoir relatively protected from antibiotics, thus enabling long-term colonization of the host and explaining clinical failures and relapses after antibiotic therapy. Here we confirm that intracellular reservoirs of S. aureus in mice comprise a virulent subset of bacteria that can establish infection even in the presence of vancomycin, and we introduce a novel therapeutic that effectively kills intracellular S. aureus. This antibody–antibiotic conjugate consists of an anti-S. aureus antibody conjugated to a highly efficacious antibiotic that is activated only after it is released in the proteolytic environment of the phagolysosome. The antibody–antibiotic conjugate is superior to vancomycin for treatment of bacteraemia and provides direct evidence that intracellular S. aureus represents an important component of invasive infections.


EMBO Reports | 2009

PLIC proteins or ubiquilins regulate autophagy- dependent cell survival during nutrient starvation

Elsa-Noah N'Diaye; Kimberly Kajihara; Ivy Hsieh; Hiroshi Morisaki; Jayanta Debnath; Eric J. Brown

Ubiquilins (UBQLNs) are adaptor proteins thought to deliver ubiquitinated substrates to proteasomes. Here, we show a role for UBQLN in autophagy: enforced expression of UBQLN protects cells from starvation‐induced death, whereas depletion of UBQLN renders cells more susceptible. The UBQLN protective effect requires the autophagy‐related genes ATG5 and ATG7, two essential components of autophagy. The ubiquitin‐associated domain of UBQLN mediates both its association with autophagosomes and its protective effect against starvation. Depletion of UBQLN delays the delivery of autophagosomes to lysosomes. This study identifies a new role for UBQLN in regulating the maturation of autophagy, expanding the involvement of ubiquitin‐related proteins in this process.


Infection and Immunity | 2006

A Mycobacterial Operon Essential for Virulence In Vivo and Invasion and Intracellular Persistence in Macrophages

Lian-Yong Gao; Melissa Pak; Rabab Kish; Kimberly Kajihara; Eric J. Brown

ABSTRACT The ability to invade and grow in macrophages is necessary for Mycobacterium tuberculosis to cause disease. We have found a Mycobacterium marinum locus of two genes that is required for both invasion and intracellular survival in macrophages. The genes were designated iipA (mycobacterial invasion and intracellular persistence) and iipB. The iip mutant, which was created by insertion of a kanamycin resistance gene cassette at the 5′ region of iipA, was completely avirulent to zebra fish. Expression of the M. tuberculosis orthologue of iipA, Rv1477, fully complemented the iip mutant for infectivity in vivo, as well as for invasion and intracellular persistence in macrophages. In contrast, the iipB orthologue, Rv1478, only partially complemented the iip mutant in vivo and restored invasion but not intracellular growth in macrophages. While IipA and IipB differ at their N termini, they are highly similar throughout their C-terminal NLPC_p60 domains. The p60 domain of Rv1478 is fully functional to replace that of Rv1477, suggesting that the N-terminal sequence of Rv1477 is required for full virulence in vivo and in macrophages. Further mutations demonstrated that both Arg-Gly-Asp (RGD) and Asp-Cys-Ser-Gly (DCSG) sequences in the p60 domain are required for function. The iip mutant exhibited increased susceptibility to antibiotics and lysozyme and failed to fully separate daughter cells in liquid culture, suggesting a role for iip genes in cell wall structure and function. Altogether, these studies demonstrate an essential role for a p60-containing protein, IipA, in the pathogenesis of M. marinum infection.


PLOS Pathogens | 2013

Novel Staphylococcal Glycosyltransferases SdgA and SdgB Mediate Immunogenicity and Protection of Virulence-Associated Cell Wall Proteins

Wouter L. W. Hazenbos; Kimberly Kajihara; Richard Vandlen; J. Hiroshi Morisaki; Sophie M. Lehar; Mark J. Kwakkenbos; Tim Beaumont; Arjen Q. Bakker; Qui Phung; Lee R. Swem; Satish Ramakrishnan; Janice Kim; Min Xu; Ishita M. Shah; Binh An Diep; Tao Sai; Andrew Sebrell; Yana Khalfin; Angela Oh; Chris Koth; S. Jack Lin; Byoung-Chul Lee; Magnus Strandh; Klaus Koefoed; Peter S. Andersen; Hergen Spits; Eric J. Brown; Man-Wah Tan; Sanjeev Mariathasan

Infection of host tissues by Staphylococcus aureus and S. epidermidis requires an unusual family of staphylococcal adhesive proteins that contain long stretches of serine-aspartate dipeptide-repeats (SDR). The prototype member of this family is clumping factor A (ClfA), a key virulence factor that mediates adhesion to host tissues by binding to extracellular matrix proteins such as fibrinogen. However, the biological siginificance of the SDR-domain and its implication for pathogenesis remain poorly understood. Here, we identified two novel bacterial glycosyltransferases, SdgA and SdgB, which modify all SDR-proteins in these two bacterial species. Genetic and biochemical data demonstrated that these two glycosyltransferases directly bind and covalently link N-acetylglucosamine (GlcNAc) moieties to the SDR-domain in a step-wise manner, with SdgB appending the sugar residues proximal to the target Ser-Asp repeats, followed by additional modification by SdgA. GlcNAc-modification of SDR-proteins by SdgB creates an immunodominant epitope for highly opsonic human antibodies, which represent up to 1% of total human IgG. Deletion of these glycosyltransferases renders SDR-proteins vulnerable to proteolysis by human neutrophil-derived cathepsin G. Thus, SdgA and SdgB glycosylate staphylococcal SDR-proteins, which protects them against host proteolytic activity, and yet generates major eptopes for the human anti-staphylococcal antibody response, which may represent an ongoing competition between host and pathogen.


Molecular Biology of the Cell | 2007

The Ubiquitin-like Protein PLIC-2 Is a Negative Regulator of G Protein-coupled Receptor Endocytosis

Elsa-Noah N'Diaye; Aylin C. Hanyaloglu; Kimberly Kajihara; Manojkumar A. Puthenveedu; Ping Wu; Mark von Zastrow; Eric J. Brown

The activity of many signaling receptors is regulated by their endocytosis via clathrin-coated pits (CCPs). For G protein-coupled receptors (GPCRs), recruitment of the adaptor protein arrestin to activated receptors is thought to be sufficient to drive GPCR clustering in CCPs and subsequent endocytosis. We have identified an unprecedented role for the ubiquitin-like protein PLIC-2 as a negative regulator of GPCR endocytosis. Protein Linking IAP to Cytoskeleton (PLIC)-2 overexpression delayed ligand-induced endocytosis of two GPCRs: the V2 vasopressin receptor and beta-2 adrenergic receptor, without affecting endocytosis of the transferrin or epidermal growth factor receptor. The closely related isoform PLIC-1 did not affect receptor endocytosis. PLIC-2 specifically inhibited GPCR concentration in CCPs, without affecting membrane recruitment of arrestin-3 to activated receptors or its cellular levels. Depletion of cellular PLIC-2 accelerated GPCR endocytosis, confirming its regulatory function at endogenous levels. The ubiquitin-like domain of PLIC-2, a ligand for ubiquitin-interacting motifs (UIMs), was required for endocytic inhibition. Interestingly, the UIM-containing endocytic adaptors epidermal growth factor receptor protein substrate 15 and Epsin exhibited preferential binding to PLIC-2 over PLIC-1. This differential interaction may underlie PLIC-2 specific effect on GPCR endocytosis. Identification of a negative regulator of GPCR clustering reveals a new function of ubiquitin-like proteins and highlights a cellular requirement for exquisite regulation of receptor dynamics.


Mbio | 2016

A Putative Bacterial ABC Transporter Circumvents the Essentiality of Signal Peptidase

J. Hiroshi Morisaki; Peter A. Smith; Shailesh V. Date; Kimberly Kajihara; Chau Linda Truong; Zora Modrusan; Donghong Yan; Jing Kang; Min Xu; Ishita M. Shah; Robert Mintzer; Eric M. Kofoed; Tommy K. Cheung; David Arnott; Michael F. T. Koehler; Christopher E. Heise; Eric J. Brown; Man-Wah Tan; Wouter L. W. Hazenbos

ABSTRACT The type I signal peptidase of Staphylococcus aureus, SpsB, is an attractive antibacterial target because it is essential for viability and extracellularly accessible. We synthesized compound 103, a novel arylomycin-derived inhibitor of SpsB with significant potency against various clinical S. aureus strains (MIC of ~1 µg/ml). The predominant clinical strain USA300 developed spontaneous resistance to compound 103 with high frequency, resulting from single point mutations inside or immediately upstream of cro/cI, a homolog of the lambda phage transcriptional repressor cro. These cro/cI mutations led to marked (>50-fold) overexpression of three genes encoding a putative ABC transporter. Overexpression of this ABC transporter was both necessary and sufficient for resistance and, notably, circumvented the essentiality of SpsB during in vitro culture. Mutation of its predicted ATPase gene abolished resistance, suggesting a possible role for active transport; in these bacteria, resistance to compound 103 occurred with low frequency and through mutations in spsB. Bacteria overexpressing the ABC transporter and lacking SpsB were capable of secreting a subset of proteins that are normally cleaved by SpsB and instead were cleaved at a site distinct from the canonical signal peptide. These bacteria secreted reduced levels of virulence-associated proteins and were unable to establish infection in mice. This study reveals the mechanism of resistance to a novel arylomycin derivative and demonstrates that the nominal essentiality of the S. aureus signal peptidase can be circumvented by the upregulation of a putative ABC transporter in vitro but not in vivo. IMPORTANCE The type I signal peptidase of Staphylococcus aureus (SpsB) enables the secretion of numerous proteins by cleavage of the signal peptide. We synthesized an SpsB inhibitor with potent activity against various clinical S. aureus strains. The predominant S. aureus strain USA300 develops resistance to this inhibitor by mutations in a novel transcriptional repressor (cro/cI), causing overexpression of a putative ABC transporter. This mechanism promotes the cleavage and secretion of various proteins independently of SpsB and compensates for the requirement of SpsB for viability in vitro. However, bacteria overexpressing the ABC transporter and lacking SpsB secrete reduced levels of virulence-associated proteins and are unable to infect mice. This study describes a bacterial resistance mechanism that provides novel insights into the biology of bacterial secretion. The type I signal peptidase of Staphylococcus aureus (SpsB) enables the secretion of numerous proteins by cleavage of the signal peptide. We synthesized an SpsB inhibitor with potent activity against various clinical S. aureus strains. The predominant S. aureus strain USA300 develops resistance to this inhibitor by mutations in a novel transcriptional repressor (cro/cI), causing overexpression of a putative ABC transporter. This mechanism promotes the cleavage and secretion of various proteins independently of SpsB and compensates for the requirement of SpsB for viability in vitro. However, bacteria overexpressing the ABC transporter and lacking SpsB secrete reduced levels of virulence-associated proteins and are unable to infect mice. This study describes a bacterial resistance mechanism that provides novel insights into the biology of bacterial secretion.


Archive | 2013

Gram-positive bacteria specific binding compounds

Tim Beaumont; Mark Jeroen Kwakkenbos; Eric J. Brown; John Hiroshi Morisaki; Wouter L. W. Hazenbos; Sanjeev Mariathasan; Kimberly Kajihara; Yi Xia


mAbs | 2018

Structural investigation of human S. aureus-targeting antibodies that bind wall teichoic acid

Rina Fong; Kimberly Kajihara; Matthew T. Chen; Isidro Hotzel; Sanjeev Mariathasan; Wouter L. W. Hazenbos; Patrick Lupardus


Archive | 2016

Anti-staphylococcus aureus antibody rifamycin conjugates and uses thereof

Eric J. Brown; Wouter L. W. Hazenbos; Isidro Hotzel; Kimberly Kajihara; Sophie M. Lehar; Sanjeev Mariathasan; Thomas H. Pillow; Leanna Staben; Vishal Verma; Binqing Wei; Yi Xia; Min Xu


Archive | 2015

Conjugués de rifamycine et d'anticorps anti-staphylococcus aureus et leurs utilisations

Eric J. Brown; Wouter L. W. Hazenbos; Isidro Hotzel; Kimberly Kajihara; Sophie M. Lehar; Sanjeev Mariathasan; Thomas H. Pillow; Leanna Staben; Vishal A. Verma; Binqing Wei; Yi Xia; Min Xu

Collaboration


Dive into the Kimberly Kajihara's collaboration.

Top Co-Authors

Avatar

Eric J. Brown

University of California

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge