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Nogueira, P. A. S.

Publications and source records attributed to Nogueira, P. A. S..

2 recordsLinked to original sources

Modulation of Oncogenic KRAS Signaling by Branched Actin-driven Cell Membrane Protrusions

For over three decades, we have known that oncogenic RAS alters the actin cytoskeleton organization and cell surface morphology1,2. RAS activates the GTPase RAC1, which triggers the growth of branched actin networks to promote cell membrane protrusions3,4. In melanoma, the hyperactive RAC1 mutant, Rac1P29S, was recently shown to drive extended lamellipodia, which then empower cell proliferation through sequestration and localized inhibition of the merlin tumor suppressor5. This discovery illustrates cell morphological programs not only as outputs but also as regulators of human oncogenic signals. Hence, we wondered whether the pronounced branched actin-driven membrane protrusions (BAMPs) downstream of oncogenic RAS are not mere outputs of RAS signaling but rather an active component in mediating the oncogenic penetrance of RAS mutants. We used volumetric light sheet microscopy and biochemical approaches to investigate the role of BAMPs in regulating the molecular signaling of oncogenic KRAS in pancreatic and lung cancer models. We found that elevated BAMP formation regulated the interaction of oncogenic KRAS with downstream effectors, specifically with the RAC1 GEF TIAM1. This implies that BAMPs amplify their own upstream regulators in a positive feedback. This meritorious cycle upregulates cyclin D1 expression by inactivating the merlin tumor suppressor, independently of the mitogen activated protein kinase pathway (MAPK). In the absence of BAMPs, cells carrying oncogenic KRAS mutations are unable to attain their full penetrance in proliferation. Overall, this work unveils the long-overlooked role of branched actin-driven cell morphology in the functionalization of KRAS mutants as potent oncogenes.

cancer biology↗

CETP expression in females increases body metabolism under both cold exposure and thermoneutrality contributing to a leaner phenotype

Susceptibility to obesity differs depending on the genetic background and housing temperatures. We have recently reported that CETP expressing female mice are leaner due to increased lipolysis, brown adipose tissue (BAT) activity and body energy expenditure compared to non-transgenic (NTg) littermates under standard housing temperature (22{degrees}C). The aim of this study is to evaluate how CETP expression affect body temperature, composition and metabolism during cold exposure (4{degrees}C) and thermoneutrality (30{degrees}C). When submitted to cold, CETP mice maintained rectal temperature, body weight and food intake similarly to NTg mice along acute or chronic exposure to 4{o}C. The body oxygen consumption in response to an isoproterenol challenge was 21% higher at 22{o}C, and 41% higher after 7 days of cold exposure in CETP than in NTg mice. In addition, BAT biopsies from CETP mice showed reduced lipid content and increased basal oxygen consumption rates. Under thermoneutrality (30{o}C), when BAT activity is inhibited, CETP mice showed higher rectal and tail temperatures, increased food intake and increased energy expenditure. Lean mass was elevated and fat mass reduced in CETP mice kept at 30{o}C. In this thermoneutrality condition, soleus muscle, but not gastrocnemius or liver of CETP mice showed increased mitochondrial respiration rates. These data indicate that CETP expression confers a greater capacity of elevating body metabolic rates at both cold exposure, through BAT activity, and at thermoneutrality, through increased muscle metabolism. Thus, the CETP expression levels in females should be considered as a new influence in the contexts of obesity and metabolic disorders propensity. NEW & NOTEWORTHYWe demonstrate here that CETP expression in females increases body metabolism under cold (4{o}C) and thermoneutrality (30{o}C). Since this has also been shown at 22{o}C, it seems a constitutive feature of CETP expression. Brown adipose tissue and red fiber muscle contribute to the overall high metabolism and leaner phenotype of CETP mice. Elevated mitochondrial respiration rates were demonstrated in these tissues. Thus, CETP is a new relevant variable in the context of obesity and metabolic disorders. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=114 SRC="FIGDIR/small/623058v1_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@19ed73org.highwire.dtl.DTLVardef@3458acorg.highwire.dtl.DTLVardef@a9896forg.highwire.dtl.DTLVardef@7e1138_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗