Evidence for Sex-specific Effects of TCDD on Male and Female Progeny Exposed in Utero

Epidemiology ◽  
2006 ◽  
Vol 17 (Suppl) ◽  
pp. S93
Author(s):  
B Le Magueress-Battistoni ◽  
F Odet ◽  
C Guigon ◽  
A Vérot ◽  
R Guyot ◽  
...  
2012 ◽  
Vol 2 (1_suppl) ◽  
pp. s-0032-1319931-s-0032-1319931
Author(s):  
S. Al Rowas ◽  
R. Gawri ◽  
R. Haddad ◽  
A. Almaawi ◽  
L. E. Chalifour ◽  
...  

Nutrients ◽  
2020 ◽  
Vol 12 (3) ◽  
pp. 781 ◽  
Author(s):  
Katherine F. Wallis ◽  
Stepan B. Melnyk ◽  
Isabelle R. Miousse

Dietary methionine restriction is associated with improved health outcomes and an increase in lifespan in animal models. We have previously shown that an increase in dietary methionine induces alteration in the intestinal microbiome. The composition of the intestinal microbiota is a determinant of health and we, therefore, hypothesized that dietary methionine restriction would also induce changes in the murine microbiome. After one month on a methionine-restricted diet, five-month-old male and female C57BL/6 mice had decreased levels of serum methionine, without changes in body weight. We identified a decrease in the hepatic methylation status of animals fed a methionine-restricted diet compared to controls. This decrease was not associated with changes in DNA or protein methylation in the liver. In males, we saw an increase in families Bacteroidaceae and Verrucoccaceae (mostly A. mucinophila) and a decrease in Rumminococcaceae in animals fed a methionine-restricted diet compared to controls. In females, Bacteroidales family S24-7 was increased two-fold, while families Bacteroidaceae, Verrucoccaceae, Rumminococcaceae, and Rikenellaceae were decreased compared to controls. In summary, feeding a methionine-restricted diet for one month was associated with significant and sex-specific changes in the intestinal microbiome.


1986 ◽  
Vol 17 (1) ◽  
pp. 65-74 ◽  
Author(s):  
Maria Lucia O. Souza Formigoni ◽  
Helena Maria Lodder ◽  
Oswaldo Gianotti Filho ◽  
Tania M.S. Ferreira ◽  
E.A. Carlini

2017 ◽  
Vol 16 (1) ◽  
Author(s):  
Emily F. Winterbottom ◽  
Devin C. Koestler ◽  
Dennis Liang Fei ◽  
Eric Wika ◽  
Anthony J. Capobianco ◽  
...  

Genetics ◽  
2019 ◽  
Vol 212 (3) ◽  
pp. 801-813 ◽  
Author(s):  
Yu Bi ◽  
Xiaoliang Ren ◽  
Runsheng Li ◽  
Qiutao Ding ◽  
Dongying Xie ◽  
...  

Hybrid male progeny from interspecies crosses are more prone to sterility or inviability than hybrid female progeny, and the male sterility and inviability often demonstrate parent-of-origin asymmetry. However, the underlying genetic mechanism of asymmetric sterility or inviability remains elusive. We previously established a genome-wide hybrid incompatibility (HI) landscape between Caenorhabditis briggsae and C. nigoni by phenotyping a large collection of C. nigoni strains each carrying a C. briggsae introgression. In this study, we systematically dissect the genetic mechanism of asymmetric sterility and inviability in both hybrid male and female progeny between the two species. Specifically, we performed reciprocal crosses between C. briggsae and different C. nigoni strains that each carry a GFP-labeled C. briggsae genomic fragment referred to as introgression, and scored the HI phenotypes in the F1 progeny. The aggregated introgressions cover 94.6% of the C. briggsae genome, including 100% of the X chromosome. Surprisingly, we observed that two C. briggsaeX fragments that produce C. nigoni male sterility as an introgression rescued hybrid F1 sterility in males fathered by C. briggsae. Subsequent backcrossing analyses indicated that a specific interaction between the X-linked interaction and one autosome introgression is required to rescue the hybrid male sterility. In addition, we identified another two C. briggsae genomic intervals on chromosomes II and IV that can rescue the inviability, but not the sterility, of hybrid F1 males fathered by C. nigoni, suggesting the involvement of differential epistatic interactions in the asymmetric hybrid male fertility and inviability. Importantly, backcrossing of the rescued sterile males with C. nigoni led to the isolation of a 1.1-Mb genomic interval that specifically interacts with an X-linked introgression, which is essential for hybrid male fertility. We further identified three C. briggsae genomic intervals on chromosome I, II, and III that produced inviability in all F1 progeny, dependent on or independent of the parent-of-origin. Taken together, we identified multiple independent interacting loci that are responsible for asymmetric hybrid male and female sterility, and inviability, which lays a foundation for their molecular characterization.


2020 ◽  
Vol 303 (10) ◽  
pp. 2657-2667 ◽  
Author(s):  
Ryan J. Wood‐Bradley ◽  
Sarah L. Henry ◽  
Sanna Barrand ◽  
Anais Giot ◽  
Luke Eipper ◽  
...  

2014 ◽  
Vol 4 (13) ◽  
pp. 2633-2641 ◽  
Author(s):  
Emmanouil Dokianakis ◽  
Emmanuel D. Ladoukakis

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