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Scofield, S.

Publications and source records attributed to Scofield, S..

2 recordsLinked to original sources

Analysis of cell death induction by the barley NLR immune receptor PBR1

The barley (Hordeum vulgare subsp. vulgare) disease resistance protein AvrPphB Response 1 (PBR1) mediates recognition of the Pseudomonas syringae effector, AvrPphB. PBR1 belongs to the coiled-coil nucleotide-binding leucine-rich repeat (CNL) family. However, little is known about the molecular mechanisms that lead to PBR1-dependent cell death (hypersensitive reaction; HR) in response to AvrPphB. Here, we investigated PBR1 immune signaling after Agrobacterium-mediated transient expression in Nicotiana benthamiana. We found that co-expression of PBR1 with AvrPphB resulted in robust cell death, confirming previous observations that PBR1 is indeed the cognate NLR that recognizes AvrPphB. The N-terminal tagging of PBR1 with super Yellow Fluorescent Protein (sYFP) abolished PBR1-mediated cell death, demonstrating that an N-terminal epitope tag disrupts PBR1-mediated immune signaling. Furthermore, none of the individual protein domains or truncations of PBR1 induced a HR-like cell death response as strong as full-length PBR1 when co-expressed with AvrPphB, indicating that the individual domains and fragments of PBR1 are insufficient to trigger HR. Intriguingly, introducing the typically auto-activating D496V mutation within NB-ARC-containing fragments of PBR1 does not activate immune signaling revealing PBR1-mediated immune signaling requires cooperation of all domains in cis. Using co-immunoprecipitation and split-luciferase assays, we also show full-length PBR1 self-associates in the absence of AvrPphB and such self-association is not dependent on a functional P-loop/Walker A motif. Collectively, these findings provide valuable insights into PBR1-mediated disease resistance and extends upon our understanding of NLR-mediated immune signaling.

plant biology↗

Prenatal benzene exposure alters offspring hypothalamic development predisposing to metabolic disease in later life

The hypothalamus is essential in the regulation of metabolism, notably during critical windows of development. An abnormal hormonal and inflammatory milieu during development can trigger persistent changes in the function of hypothalamic circuits, leading to long-lasting effects on the bodys energy homeostasis and metabolism. We recently demonstrated that gestational exposure to benzene at smoking levels induces severe metabolic dysregulation in the offspring. Given the central role of the hypothalamus in metabolic control, we hypothesized that prenatal exposure to benzene impacts hypothalamic development, contributing to the adverse metabolic effects in the offspring. C57BL/6JB dams were exposed to benzene in the inhalation chambers exclusively during pregnancy (from E0.5 to E19). The transcriptome analysis of the offspring hypothalamus at postnatal day 21 (P21) revealed changes in genes related to metabolic regulation, inflammation, and neurodevelopment exclusively in benzene-exposed male offspring. Moreover, the hypothalamus of prenatally benzene-exposed male offspring displayed alterations in orexigenic and anorexigenic projections, impairments in leptin signaling, and increased microgliosis. Additional exposure to benzene during lactation did not promote further microgliosis or astrogliosis in the offspring, while the high-fat diet (HFD) challenge in adulthood exacerbated glucose metabolism and hypothalamic inflammation in benzene-exposed offspring of both sexes. These findings reveal the persistent impact of prenatal benzene exposure on hypothalamic circuits and neuroinflammation, predisposing the offspring to long-lasting metabolic health conditions.

neuroscience↗