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Haller, Carolyn

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Haller

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Carolyn

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Haller, Carolyn

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Now showing 1 - 3 of 3
  • Publication

    In situ regeneration of bioactive coatings enabled by an evolved Staphylococcus aureus sortase A

    (Nature Publishing Group, 2016) Ham, Hyun Ok; Qu, Zheng; Haller, Carolyn; Dorr, Brent M.; Dai, Erbin; Kim, Wookhyun; Liu, David; Chaikof, Elliot

    Surface immobilization of bioactive molecules is a central paradigm in the design of implantable devices and biosensors with improved clinical performance capabilities. However, in vivo degradation or denaturation of surface constituents often limits the long-term performance of bioactive films. Here we demonstrate the capacity to repeatedly regenerate a covalently immobilized monomolecular thin film of bioactive molecules through a two-step stripping and recharging cycle. Reversible transpeptidation by a laboratory evolved Staphylococcus aureus sortase A (eSrtA) enabled the rapid immobilization of an anti-thrombogenic film in the presence of whole blood and permitted multiple cycles of film regeneration in vitro that preserved its biological activity. Moreover, eSrtA transpeptidation facilitated surface re-engineering of medical devices in situ after in vivo implantation through removal and restoration film constituents. These studies establish a rapid, orthogonal and reversible biochemical scheme to regenerate selective molecular constituents with the potential to extend the lifetime of bioactive films.

  • Publication

    Glycopeptide Analogues of PSGL-1 Inhibit P-Selectin In Vitro and In Vivo

    (2015) Krishnamurthy, Venkata R; Sardar, Mohammed Y. R.; Yu, Ying; Song, Xuezheng; Haller, Carolyn; Dai, Erbin; Wang, Xiacong; Hanjaya-Putra, Donny; Sun, Lijun; Morikis, Vasilios; Simon, Scott I.; Woods, Robert; Cummings, Richard D.; Chaikof, Elliot

    Blockade of P-selectin/PSGL-1 interactions holds significant potential for treatment of disorders of innate immunity, thrombosis, and cancer. Current inhibitors remain limited due to low binding affinity or by the recognized disadvantages inherent to chronic administration of antibody therapeutics. Here we report an efficient approach for generating glycosulfopeptide mimics of N-terminal PSGL-1 through development of a stereoselective route for multi-gram scale synthesis of the C2 O-glycan building block and replacement of hydrolytically labile tyrosine sulfates with isosteric sulfonate analogs. Library screening afforded a compound of exceptional stability, GSnP-6, that binds to human P-selectin with nanomolar affinity (Kd ~ 22 nM). Molecular dynamics simulation defines the origin of this affinity in terms of a number of critical structural contributions. GSnP-6 potently blocks P-selectin/PSGL-1 interactions in vitro and in vivo and represents a promising candidate for the treatment of diseases driven by acute and chronic inflammation.

  • Publication

    An immobilized liquid interface prevents device associated bacterial infection in vivo

    (Elsevier BV, 2017) Chen, Jiaxuan; Howell, Caitlin; Haller, Carolyn; Patel, Madhukar; Ayala, Perla; Moravec, Katherine A.; Dai, Erbin; Liu, Liying; Sotiri, Irini; Aizenberg, Michael; Aizenberg, Joanna; Chaikof, Elliot

    Virtually all biomaterials are susceptible to biofilm formation and, as a consequence, device-associated infection. The concept of an immobilized liquid surface, termed slippery liquid-infused porous surfaces (SLIPS), represents a new framework for creating a stable, dynamic, omniphobic surface that displays ultralow adhesion and limits bacterial biofilm formation. A widely used biomaterial in clinical care, expanded polytetrafluoroethylene (ePTFE), infused with various perfluorocarbon liquids generated SLIPS surfaces that exhibited a 99% reduction in S. aureus adhesion with preservation of macrophage viability, phagocytosis, and bactericidal function. Notably, SLIPS modification of ePTFE prevents device infection after S. aureus challenge in vivo, while eliciting a significantly attenuated innate immune response. SLIPS-modified implants also decrease macrophage inflammatory cytokine expression in vitro, which likely contributed to the presence of a thinner fibrous capsule in the absence of bacterial challenge. SLIPS is an easily implementable technology that provides a promising approach to substantially reduce the risk of device infection and associated patient morbidity, as well as health care costs.