Search bioRxiv⌕ Search

Biology subjects

Waters, H.

Publications and source records attributed to Waters, H..

2 recordsLinked to original sources

Type-I interferons drive the gastrointestinal inflammatory response in a mouse model of Parkinsons disease

Background and AimsParkinsons disease (PD) is an age-related neurodegenerative disorder characterised by classical motor symptoms due to a loss of dopaminergic neurons in the substantia nigra pars compacta. The type-I interferons (IFNs) are elevated in the aging brain and we have implicated them in the neuroinflammatory response in PD. With increasing evidence of gastrointestinal (GI) dysfunction in PD patients, this study explored the contribution of the type-I IFNs to the transmission of pathology from the brain to the gut in PD. MethodsYoung (10-12 weeks) and aged (40-50 weeks) wildtype and IFNAR1-/- mice received an intrastriatal injection of human alpha-synuclein (-Syn) pre-formed fibrils (PFF) (8ug) with gut tissue analysed 6-months post-injection (p.i). A mouse intestinal organoid culture model was established to further characterise the -Syn induced inflammatory response in the gut. ResultsAn intrastriatal injection of human -Syn PFFs was shown to initiate a type-I IFN-dependent neuroinflammatory response in the GI tract of wildtype mice at 6-months p.i. This response was attributed to an elevation in type-I IFN signalling in aged mice that was absent in the IFNAR1-/- mice. Mouse intestinal organoid cultures confirmed -Syn was taken up by the enteroendocrine cells (EECs) to induce a type-I IFN mediated pro-inflammatory response that was attenuated in IFNAR1-/- cultures. ConclusionThis study has confirmed the type-I IFNs modulate the -Syn PFF induced inflammatory response within the gut potentiating pathology progression along the gut-brain axis. Early intervention of this type-I IFN response may be a potential therapeutic target to limit the progression of PD.

neuroscience↗

PIEZO1-dependent erythrocyte dehydration as the mechanism for selection of an allele protecting from severe malaria.

PIEZO1 is a cation specific mechanoreceptor channel implicated in red blood cell (RBC) volume homeostasis. Several PIEZO1 gain of function (GoF) variants demonstrate delayed channel inactivation and can cause hereditary xerocytosis (HX), a disease characterized by hemolytic anemia, RBC dehydration, and shape distortion. The milder PIEZO1E756del GoF variant, prevalent in populations of African descent, protects carriers from severe malaria caused by Plasmodium falciparum and ameliorate disease in a rodent malaria model. To explore the mechanism of this malaria protection, P. falciparum infection of human PIEZO1E756del RBC was analyzed in shear-stressed and static cultures with and without Yoda1, a PIEZO1 agonist. RBC dehydration was a common pathophysiological factor affecting parasite replication in both culture conditions. PIEZO1 channel opening by either Yoda1 or shear stress produced dehydration-dependent cell hemolysis, inhibiting P. falciparum infection. Since the physiological activator of PIEZO1 in circulating RBC is shear stress, we propose that shear stress-induced dehydration, disproportionally affecting RBC of GoF PIEZO1 E756del carriers, makes erythrocytes less habitable for P. falciparum to the point of hemolysis, and thus ameliorates malaria in GoF PIEZO1E756del carriers. More generally, RBC dehydration processes may be a pathway for protection from the severe form of malaria common to several hematological disorders, including sickle cell trait. Key pointsO_LIPIEZO1E756del activation in African American donor RBC provokes dehydration-dependent cell hemolysis, impairing P. falciparum replication. C_LIO_LIRBC dehydration could be a malaria ameliorating factor in several known RBC hematological disorders, including sickle cell trait. C_LI

biophysics↗