CCR2/CCR5-mediated macrophage-smooth muscle cell crosstalk in pulmonary hypertension
EUROPEAN RESPIRATORY JOURNAL
Authors: Abid, Shariq; Marcos, Elisabeth; Parpaleix, Aurelien; Amsellem, Valerie; Breau, Marielle; Houssaini, Amal; Vienney, Nora; Lefevre, Marine; Derumeaux, Genevieve; Evans, Steven; Hubeau, Cedric; Delcroix, Marion; Quarck, Rozenn; Adnot, Serge; Lipskaia, Larissa
Abstract
Macrophages are major players in the pathogenesis of pulmonary arterial hypertension (PAH). To investigate whether lung macrophages and pulmonary-artery smooth muscle cells (PASMCs) collaborate to stimulate PASMC growth and whether the CCL2-CCR2 and CCL5-CCR5 pathways inhibited macrophage-PASMC interactions and PAH development, we used human CCR5-knock-in mice and PASMCs from patients with PAH and controls. Conditioned media from murine M1 or M2 macrophages stimulated PASMC growth. This effect was markedly amplified with conditioned media from M2 macrophage/PASMC co-cultures. CCR2, CCR5, CCL2 and CCL5 were upregulated in macrophage/PASMC co-cultures. Compared to inhibiting either receptor, dual CCR2 and CCR5 inhibition more strongly attenuated the growth-promoting effect of conditioned media from M2-macrophage/PASMC co-cultures. Deleting either CCR2 or CCR5 in macrophages or PASMCs attenuated the growth response. In mice with hypoxia- or SUGEN/hypoxia-induced PH, targeting both CCR2 and CCR5 prevented or reversed PH more efficiently than targeting either receptor alone. Patients with PAH exhibited CCR2 and CCR5 upregulation in PASMCs and perivascular macrophages compared to controls. The PASMC growth-promoting effect of conditioned media from M2-macrophage/PASMC co-cultures was greater when PASMCs from PAH patients were used in the co-cultures or as the target cells and was dependent on CCR2 and CCR5. PASMC migration toward M2-macrophages was greater with PASMCs from PAH patients and was attenuated by blocking CCR2 and CCR5. CCR2 and CCR5 are required for collaboration between macrophages and PASMCs to initiate and amplify PASMC migration and proliferation during PAH development. Dual targeting of CCR2 and CCR5 may hold promise for treating human PAH.
Genome editing of CCR5 by AsCpf1 renders CD4(+)T cells resistance to HIV-1 infection
CELL AND BIOSCIENCE
Authors: Liu, Zhepeng; Liang, Jin; Chen, Shuliang; Wang, Kewu; Liu, Xianhao; Liu, Beibei; Xia, Yang; Guo, Mingxiong; Zhang, Xiaoshi; Sun, Guihong; Tian, Geng
Abstract
Background The chemokine receptor CCR5 is one of the co-receptor of HIV-1 infection. People with homozygousCCR5 Delta 32deletion resist HIV-1 infection, which makes theCCR5an important target for HIV-1 gene therapy. Although the CRISPR/Cas9 has ever been used for HIV-1 study, the newly developed CRISPR/AsCpf1 has never been utilized in HIV-1 co-receptor disruption. The CRISPR/Cpf1 system shows many advantages over CRISPR/Cas9, such as lower off-target, small size of nuclease, easy sgRNA design for multiplex gene editing, etc. Therefore, the CRISPR/Cpf1 mediated gene editing will confer a more specific and safe strategy in HIV-1 co-receptor disruption. Results Here, we demonstrated that CRISPR/AsCpf1 could ablate the main co-receptor of HIV-1 infection-CCR5efficiently with two screened sgRNAs via different delivery strategies (lentivirus, adenovirus). The edited cells resisted R5-tropic HIV-1 infection but not X4-tropic HIV-1 infection compared with the control group in different cell types of HIV-1 study (TZM.bl, SupT1-R5, Primary CD4(+)T cells). Meanwhile, the edited cells exhibited selective advantage over unedited cells while under the pressure of R5-tropic HIV-1. Furthermore, we clarified that the predicted off-target sites of selected sgRNAs were very limited, which is much less than regular using sgRNAs for CRISPR/Cas9, and no evident off-target was observed. We also showed that the disruption ofCCR5by CRISPR/AsCpf1 took no effects on cell proliferation and apoptosis. Conclusions Our study provides a basis for a possible application ofCCR5-targeting gene editing by CRISPR/AsCpf1 with high specific sgRNAs against HIV-1 infection.