Showing posts with label zebrafish. Show all posts
Showing posts with label zebrafish. Show all posts

Thursday, September 20, 2018

Liver Cancer, Males Vs. Females, And ZebraFish

At left, adult female zebrafish. By Azul (Own work) [Copyrighted free use], via Wikimedia Commons

Liver cancer is more prevalent in men. There may be both biological and lifestyle reasons for this. To study possible biological mechanism, a zebrafish model was used. Abstract:

Hepatocellular carcinoma (HCC) is more prevalent in men than women, but the reason for this gender disparity is not well understood. To investigate whether zebrafish could be used to study the gender disparity of HCC, we compared the difference of liver tumorigenesis between female and male fish during early tumorigenesis and long-term tumor progression in our previously established inducible and reversible HCC model - the krasV12 transgenic zebrafish. We found that male fish developed HCC faster than females. The male tumors were more severe from the initiation stage, characteristic of higher proliferation, activation of WNT/β-catenin pathway and loss of cell adhesion. During long-term tumor progression, the male tumors developed into more advanced multi-nodular tumors, whereas the female tumors remain uniform and homogenous. Moreover, regression of male tumors required longer time. We further investigated the role of sex hormones in krasV12 transgenic fish. Estrogen treatment showed tumor suppressing effect during early tumorigenesis through inhibiting cell proliferation, whereas androgen accelerated tumor growth by promoting cell proliferation. Overall, our study presented the zebrafish as a useful animal model for study of gender disparity of HCC.

Obviously, humans are not zebrafish and it is not certain that the possible hormonal mechanism identified in the fish applies to humans, but it is a possible avenue for study.



Monday, June 11, 2018

Gene Expression After Death

Make of this what you will; apparently, in mice and zebrafish, over one thousand genes show increased expression after the death of the animal, with altered expression extending up tp 96 hours postmortem.  The following gene categories were emphasized: “stress, immunity, inflammation, apoptosis, transport, development, epigenetic regulation and cancer.”  Abstract:

In life, genetic and epigenetic networks precisely coordinate the expression of genes—but in death, it is not known if gene expression diminishes gradually or abruptly stops or if specific genes and pathways are involved. We studied this by identifying mRNA transcripts that apparently increase in relative abundance after death, assessing their functions, and comparing their abundance profiles through postmortem time in two species, mouse and zebrafish. We found mRNA transcript profiles of 1063 genes became significantly more abundant after death of healthy adult animals in a time series spanning up to 96 h postmortem. Ordination plots revealed non-random patterns in the profiles by time. While most of these transcript levels increased within 0.5 h postmortem, some increased only at 24 and 48 h postmortem. Functional characterization of the most abundant transcripts revealed the following categories: stress, immunity, inflammation, apoptosis, transport, development, epigenetic regulation and cancer. The data suggest a step-wise shutdown occurs in organismal death that is manifested by the apparent increase of certain transcripts with various abundance maxima and durations.