Person: Lee, Hakho
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Publication Nanoparticle Detection of Urinary Markers for Point-of-Care Diagnosis of Kidney Injury
(Public Library of Science, 2015) Chung, Hyun Jung; Pellegrini, Kathryn L.; Chung, Jaehoon; Wanigasuriya, Kamani; Jayawardene, Innocent; Lee, Kyungheon; Lee, Hakho; Vaidya, Vishal; Weissleder, RalphThe high incidence of acute and chronic kidney injury due to various environmental factors such as heavy metals or chemicals has been a major problem in developing countries. However, the diagnosis of kidney injury in these areas can be more challenging due to the lack of highly sensitive and specific techniques that can be applied in point-of-care settings. To address this, we have developed a technique called ‘micro-urine nanoparticle detection (μUNPD)’, that allows the detection of trace amounts of molecular markers in urine. Specifically, this technique utilizes an automated on-chip assay followed by detection with a hand-held device for the read-out. Using the μUNPD technology, the kidney injury markers KIM-1 and Cystatin C were detected down to concentrations of 0.1 ng/ml and 20 ng/ml respectively, which meets the cut-off range required to identify patients with acute or chronic kidney injury. Thus, we show that the μUNPD technology enables point of care and non-invasive detection of kidney injury, and has potential for applications in diagnosing kidney injury with high sensitivity in resource-limited settings.
Publication Chip-based analysis of exosomal mRNA mediating drug resistance in glioblastoma
(Nature Pub. Group, 2015) Shao, Huilin; Chung, Jaehoon; Lee, Kyungheon; Balaj, Leonora; Min, Changwook; Carter, Bob S.; Hochberg, Fred H.; Breakefield, Xandra; Lee, Hakho; Weissleder, RalphReal-time monitoring of drug efficacy in glioblastoma multiforme (GBM) is a major clinical problem as serial re-biopsy of primary tumours is often not a clinical option. MGMT (O6-methylguanine DNA methyltransferase) and APNG (alkylpurine-DNA-N-glycosylase) are key enzymes capable of repairing temozolomide-induced DNA damages and their levels in tissue are inversely related to treatment efficacy. Yet, serial clinical analysis remains difficult, and, when done, primarily relies on promoter methylation studies of tumour biopsy material at the time of initial surgery. Here we present a microfluidic chip to analyse mRNA levels of MGMT and APNG in enriched tumour exosomes obtained from blood. We show that exosomal mRNA levels of these enzymes correlate well with levels found in parental cells and that levels change considerably during treatment of seven patients. We propose that if validated on a larger cohort of patients, the method may be used to predict drug response in GBM patients.
Publication On Chip Analysis of CNS Lymphoma in Cerebrospinal Fluid
(Ivyspring International Publisher, 2015) Turetsky, Anna; Lee, Kyungheon; Song, Jun; Giedt, Randy; Kim, Eunha; Kovach, Alexandra E.; Hochberg, Ephraim; Castro, Cesar; Lee, Hakho; Weissleder, RalphMolecular profiling of central nervous system lymphomas in cerebrospinal fluid (CSF) samples can be challenging due to the paucicellular and limited nature of the samples. Presented herein is a microfluidic platform for complete CSF lymphoid cell analysis, including single cell capture in sub-nanoliter traps, and molecular and chemotherapeutic response profiling via on-chip imaging, all in less than one hour. The system can detect scant lymphoma cells and quantitate their kappa/lambda immunoglobulin light chain restriction patterns. The approach can be further customized for measurement of additional biomarkers, such as those for differential diagnosis of lymphoma subtypes or for prognosis, as well as for imaging exposure to experimental drugs.
Publication Rapid identification of health care–associated infections with an integrated fluorescence anisotropy system
(American Association for the Advancement of Science, 2016) Park, Ki Soo; Huang, Chen-Han; Lee, Kyungheon; Yoo, Yeong-Eun; Castro, Cesar; Weissleder, Ralph; Lee, HakhoHealth care–associated infections (HAIs) and drug-resistant pathogens have become a major health care issue with millions of reported cases every year. Advanced diagnostics would allow clinicians to more quickly determine the most effective treatment, reduce the nonspecific use of broad-spectrum antimicrobials, and facilitate enrollment in new antibiotic treatments. We present a new integrated system, polarization anisotropy diagnostics (PAD), for rapid detection of HAI pathogens. The PAD uses changes of fluorescence anisotropy when detection probes recognize target bacterial nucleic acids. The technology is inherently robust against environmental noise and economically scalable for parallel measurements. The assay is fast (2 hours) and performed on-site in a single-tube format. When applied to clinical samples obtained from interventional procedures, the PAD determined the overall bacterial burden, differentiated HAI bacterial species, and identified drug resistance and virulence status. The PAD system holds promise as a powerful tool for near-patient, rapid HAI testing.
Publication Immune evasion mediated by PD-L1 on glioblastoma-derived extracellular vesicles
(American Association for the Advancement of Science, 2018) Ricklefs, Franz L.; Alayo, Quazim; Krenzlin, Harald; Mahmoud, Ahmad; Speranza, Maria C.; Nakashima, Hiroshi; Hayes, Josie L.; Lee, Kyungheon; Balaj, Leonora; Passaro, Carmela; Rooj, Arun; Krasemann, Susanne; Carter, Bob; Chen, Clark C.; Steed, Tyler; Treiber, Jeffrey; Rodig, Scott; Yang, Katherine; Nakano, Ichiro; Lee, Hakho; Weissleder, Ralph; Breakefield, Xandra; Godlewski, Jakub; Westphal, Manfred; Lamszus, Katrin; Freeman, Gordon; Bronisz, Agnieszka; Lawler, Sean; Chiocca, E.Binding of programmed death ligand-1 (PD-L1) to programmed cell death protein-1 (PD1) leads to cancer immune evasion via inhibition of T cell function. One of the defining characteristics of glioblastoma, a universally fatal brain cancer, is its profound local and systemic immunosuppression. Glioblastoma has also been shown to generate extracellular vesicles (EVs), which may play an important role in tumor progression. We thus hypothesized that glioblastoma EVs may be important mediators of immunosuppression and that PD-L1 could play a role. We show that glioblastoma EVs block T cell activation and proliferation in response to T cell receptor stimulation. PD-L1 was expressed on the surface of some, but not of all, glioblastoma-derived EVs, with the potential to directly bind to PD1. An anti-PD1 receptor blocking antibody significantly reversed the EV-mediated blockade of T cell activation but only when PD-L1 was present on EVs. When glioblastoma PD-L1 was up-regulated by IFN-γ, EVs also showed some PD-L1–dependent inhibition of T cell activation. PD-L1 expression correlated with the mesenchymal transcriptome profile and was anatomically localized in the perinecrotic and pseudopalisading niche of human glioblastoma specimens. PD-L1 DNA was present in circulating EVs from glioblastoma patients where it correlated with tumor volumes of up to 60 cm3. These results suggest that PD-L1 on EVs may be another mechanism for glioblastoma to suppress antitumor immunity and support the potential of EVs as biomarkers in tumor patients.