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Brake, M. A.

Publications and source records attributed to Brake, M. A..

4 recordsLinked to original sources

A Sensitized ENU Mutagenesis Screen for Thrombosis Modifiers Identifies Suppressor Variants in Non-mutagenized Parental Generations Due to Antithrombotic Selective Pressures

Thrombosis is a leading cause of morbidity and mortality. We used a mouse forward genetic ENU screen to identify genomic variants that suppress F5L/L Tfpi+/- lethal thrombosis. Surviving F5L/L Tfpi+/- mice from our Modifier of Factor 5 Leiden 16 (MF5L16) ENU line were subjected to whole-genome sequencing analysis. This revealed that instead of an ENU-induced mutation, four mutations introduced from our F5L/L breeding stock were responsible for survival, which we named sMF5L1-4 for spontaneous Modifier of Factor 5 Leiden. In our colony, F5L/L female breeders carrying all four sMF5L mutations produced more litters and offspring than breeders with three or fewer mutations (p<0.006). Genotyping of 13 additional MF5L lines demonstrated that the four sMF5L mutations were present in all lines and were consistently associated with survival. Of these four mutations, a single G to A intergenic variant on Chromosome 18 (Chr18A, sMF5L4), was most significantly associated with survival (p=0.003), with [~]15% penetrance for conferring the survival phenotype. Furthermore, platelet aggregation was significantly reduced in Chr18A mice, suggesting an additional mechanism by which Chr18A could suppress lethal thrombosis. Comparative transcriptomics analysis of livers from Chr18A mice versus wildtype littermate controls revealed a small number of differentially expressed genes both known and unknown to affect thrombosis. In summary, we have identified four variants exerting a significant selective breeding advantage along with antithrombotic effects. Superimposing our mutagenesis screen on a selective background illustrates the interplay of natural strain background variants and de novo ENU mutations in suppressing F5L/L Tfpi+/- lethal thrombosis.

genetics↗

Identification of Regulatory Loci for Megakaryocyte and Hepatocyte Coagulation Factor V Expression in Mice

BackgroundFactor V (FV) plays a central role in the coagulation cascade, acting in both a procoagulant and anticoagulant manner. The majority of FV is produced by the liver hepatocytes. In humans, FV is endocytosed by megakaryocytes, whereas in mice, FV is synthesized by megakaryocytes. Little is known about the genomic factors regulating FV transcription in humans and mice. ObjectiveTo investigate genomic regulatory mechanisms for coagulation FV levels in the hepatocytes and megakaryocytes of inbred mice. MethodsPlasma and platelet FV levels were measured via ELISA in 5 mouse strains. A cross between the CAST/EiJ and DBA/2J strains was performed to generate 146 genetically informative F2 mice for analysis of circulating and platelet FV. Plasma and platelet FV levels were measured by ELISA for the F2 mice and whole genome genotyping for each F2 was performed using the TransnetYX MiniMUGA genotyping array. The genotyping and phenotyping data collected from these mice were then analyzed using quantitative trait loci (QTL) analysis. Results and ConclusionsWe identified one significant locus controlling plasma FV levels on Chromosome 1, [~]57.7 million base pairs upstream of the FV structural gene. We also identified a significant QTL for platelets on Chromosome 14 when sex was included as an interactive covariate, with additional suggestive loci present on Chromosomes 15 and 2. Our findings provide foundational information regarding the cell-type and sex-specific control of FV expression, establishing the basis for further investigations aimed at fine-mapping these loci and understanding how FV expression is regulated. EssentialsO_LICoagulation Factor V (FV, gene name F5) is primarily expressed in hepatocytes in humans but in hepatocytes and megakaryocyte/platelets in mice. C_LIO_LIPlasma and megakaryocyte/platelet F5 expression varies significantly between inbred mouse strains. C_LIO_LIWe identified significant loci controlling plasma and platelet F5 expression in mice. Platelet F5 expression is influenced by biological sex. C_LI

genetics↗

POmAb, an antibody targeting open prothrombin, results in anticoagulation without excessive bleeding in mice

Anti-prothrombin antibodies are commonly found in patients with Antiphospholipid Syndrome (APS), yet their role in clinical manifestations remains unclear. We recently identified two classes of anti-prothrombin antibodies based on their ability to recognize closed and open forms of prothrombin. Type-I antibodies bind to the open form, while Type-II antibodies bind to both forms. POmAb is a prototypical Type-I antibody that specifically targets kringle-1 of prothrombin, maintaining it in an open state. In this study, we assess the effects of POmAb in mice using the cremaster arteriole laser-induced injury model. POmAb bound mouse prothrombin and decreased thrombin generation in mouse plasma. When administered intravenously shortly before the injury, POmAb quickly accumulated on the damaged vessel wall. This accumulation significantly reduced fibrin generation with a modest effect on platelet accumulation and without causing excessive bleeding. Results obtained with POmAb offer insights into the potential roles of the anti-prothrombin antibodies in APS. They also provide proof of concept for a new class of anticoagulants that, by specifically targeting open prothrombin, could mitigate thrombosis with reduced bleeding risk.

molecular biology↗

A sensitized mutagenesis screen in Factor V Leiden mice identifies novel thrombosis suppressor loci

Factor V Leiden (F5L) is a common genetic risk factor for venous thromboembolism in humans. We conducted a sensitized ENU mutagenesis screen for dominant thrombosuppressor genes based on perinatal lethal thrombosis in mice homozygous for F5L (F5L/L) and haploinsufficient for tissue factor pathway inhibitor (Tfpi+/-). F8 deficiency enhanced survival of F5L/L Tfpi+/- mice, demonstrating that F5L/L Tfpi+/- lethality is genetically suppressible. ENU-mutagenized F5L/L males and F5L/+ Tfpi+/- females were crossed to generate 6,729 progeny, with 98 F5L/L Tfpi+/- offspring surviving until weaning. Sixteen lines exhibited transmission of a putative thrombosuppressor to subsequent generations, with these lines referred to as MF5L (Modifier of Factor 5 Leiden) 1-16. Linkage analysis in MF5L6 identified a chromosome 3 locus containing the tissue factor gene (F3). Though no ENU-induced F3 mutation was identified, haploinsufficiency for F3 (F3+/-) suppressed F5L/L Tfpi+/- lethality. Whole exome sequencing in MF5L12 identified an Actr2 gene point mutation (p.R258G) as the sole candidate. Inheritance of this variant is associated with suppression of F5L/L Tfpi+/- lethality (p=1.7x10-6), suggesting that Actr2p.R258G is thrombosuppressive. CRISPR/Cas9 experiments to generate an independent Actr2 knockin/knockout demonstrated that Actr2 haploinsufficiency is lethal, supporting a hypomorphic or gain of function mechanism of action for Actr2p.R258G. Our findings identify F8 and the Tfpi/F3 axis as key regulators in determining thrombosis balance in the setting of F5L and also suggest a novel role for Actr2 in this process.\n\nSignificance StatementVenous thromboembolism (VTE) is a common disease characterized by the formation of inappropriate blood clots. Inheritance of specific genetic variants, such as the Factor V Leiden polymorphism, increases VTE susceptibility. However, only ~10% of people inheriting Factor V Leiden develop VTE, suggesting the involvement of other genes that are currently unknown. By inducing random genetic mutations into mice with a genetic predisposition to VTE, we identified two genomic regions that reduce VTE susceptibility. The first includes the gene for blood coagulation Factor 3 and its role was confirmed by analyzing mice with an independent mutation in this gene. The second contains a mutation in the Actr2 gene. These findings identify critical genes for the regulation of blood clotting risk.

genetics↗