Dysregulation of CCN3 (NOV) expression in the epidermis of systemic sclerosis patients with pigmentary changes
PIGMENT CELL & MELANOMA RESEARCH
Authors: Henrot, Pauline; Pain, Catherine; Taieb, Alain; Truchetet, Marie-Elise; Cario, Muriel
Abstract
Systemic sclerosis (SSc) is a severe disease whose pathophysiology remains partly unknown, combining autoimmune, vascular, and fibrotic features. Recently, we evidenced a link between vasculopathy and pigmentary changes in SSc. CCN3 (NOV) is a matricellular protein implicated in both angiogenesis and pigmentation regulation, in particular melanocyte adhesion to the basal layer. We decided to study CCN3 expression in SSc epidermis. We show that in SSc patients with pigmentary changes compared to patients with normal pigmentation, CCN3 is specifically downregulated in situ in melanocytes and upregulated in keratinocytes. Moreover, the number of melanocytes is significantly decreased in SSc patients with a disease duration of more than 5 years compared to the other patients. Altogether, our findings could provide new insights on the mechanisms of pigmentary changes in SSc patients, as well as treatment adaptation in a personalized manner.
Identification of gut microbiota and microbial metabolites regulated by an antimicrobial peptide lipocalin 2 in high fat diet-induced obesity
INTERNATIONAL JOURNAL OF OBESITY
Authors: Qiu, Xiaoxue; Macchietto, Marissa G.; Liu, Xiaotong; Lu, You; Ma, Yiwei; Guo, Hong; Saqui-Salces, Milena; Bernlohr, David A.; Chen, Chi; Shen, Steven; Chen, Xiaoli
Abstract
Lipocalin 2 (Lcn2), as an antimicrobial peptide is expressed in intestine, and the upregulation of intestinal Lcn2 has been linked to inflammatory bowel disease. However, the role of Lcn2 in shaping gut microbiota during diet-induced obesity (DIO) remains unknown. We found that short-term high fat diet (HFD) feeding strongly stimulates intestinal Lcn2 expression and secretion into the gut lumen. As the HFD feeding prolongs, fecal Lcn2 levels turn to decrease. Lcn2 deficiency accelerates the development of HFD-induced intestinal inflammation and microbiota dysbiosis. Moreover, Lcn2 deficiency leads to the remodeling of microbiota-derived metabolome, including decreased production of short-chain fatty acids (SCFAs) and SCFA-producing microbes. Most importantly, we have identified Lcn2-targeted bacteria and microbiota-derived metabolites that potentially play roles in DIO and metabolic dysregulation. Correlation analyses suggest that Lcn2-targeted Dubosiella and Angelakisella have a novel role in regulating SCFAs production and obesity. Our results provide a novel mechanism involving Lcn2 as an antimicrobial host factor in the control of gut microbiota symbiosis during DIO.