Crohn's and Parkinson's Disease-Associated LRRK2 Mutations Alter Type II Interferon Responses in Human CD14(+) Blood Monocytes Ex Vivo
JOURNAL OF NEUROIMMUNE PHARMACOLOGY
Authors: Ikezu, Tsuneya; Koro, Lacin; Wolozin, Benjamin; Farraye, Francis A.; Strongosky, Audrey J.; Wszolek, Zbigniew K.
Abstract
The Leucine Rich Repeat Kinase 2 (LRRK2) is one of causative genes of familial Parkinson's disease (PD). The M2397T polymorphism in LRRK2 is genetically associated with sporadic Crohn's disease (CD). LRRK2 is expressed in human CD14(+) monocytes, induced by interferon-gamma (IFN-gamma) and suppresses inflammatory activation. We hypothesize that IFN-gamma-induced LRRK2 and inflammatory gene expression is altered by LRRK2 genetic polymorphism found in CD and PD cases. A total of 46 CD and 51 control cases, and 16 PD cases and 16 PD-linked LRRK2 mutation cases were recruited. Live human CD14(+) monocytes were isolated from donors for ex vivo IFN-gamma stimulation and gene expression analysis. IFN-gamma potently enhanced TNFA, IL12, HLADRA1 and LRRK2 expression, which was suppressed by FK506, a calcineurin-specific inhibitor, but further enhanced by LRRK2-specific kinase inhibitor (GSK2578215A). The 2397-M/M CD risk allele enhanced IFN-gamma responses of CD14(+) cells in CD but not in control group. CD14(+) monocytes from G2019S and R1441C LRRK2 mutated PD cases and carriers show no changes in IFN-gamma responses for TNFA or IL12, reduced response for HLADRA1, and enhanced responses for LRRK2 in FK506-sensitive manner. These data demonstrate that CD-associated LRRK2 mutations are significant modifiers of innate immune response in CD14(+) monocytes, and PD-associated LRRK2 mutation may contribute to reduced antigen presentation response.
Identification of a DNA Aptamer That Binds to Human Monocytes and Macrophages
BIOCONJUGATE CHEMISTRY
Authors: Sylvestre, Meilyn; Saxby, Christopher P.; Kacherovsky, Nataly; Gustafson, Heather; Salipante, Stephen J.; Pun, Suzie H.
Abstract
As cancer strategies shift toward immunotherapy, the need for new binding ligands to target and isolate specific immune cell populations has soared. Based on prior work identifying a peptide specific for murine M2-like macrophages, we sought to identify an aptamer that could bind human M2-like macrophages. Tumor-associated macrophages (TAMs) adopt an M2-like phenotype and support tumor progression and dissemination. Here, we employed cell-SELEX to identify an aptamer ligand that targets this cell population over tissue resident (M0-like) or tumoricidal (M1-like) macrophages. Instead, we identified an aptamer that binds both human M0- and M2-like macrophages and monocytes, with highest binding affinity to M2-like macrophage (K-d similar to 20 nM) and monocytes (K-d similar to 45 nM) and minimal binding to other leukocytes. The aptamer binds to CD14(+) but not CD16(+) monocytes, and is rapidly internalized by these cells. We also demonstrate that this aptamer is able to bind human monocytes when both are administered in vivo to mice. Thus, binding to these cell populations (monocytes, M0-like and M2-like macrophages), this aptamer lends itself toward monocyte-specific applications, such as monocyte-targeted drug delivery or column selection.