Catalogue Search | MBRL
Search Results Heading
Explore the vast range of titles available.
MBRLSearchResults
-
DisciplineDiscipline
-
Is Peer ReviewedIs Peer Reviewed
-
Item TypeItem Type
-
SubjectSubject
-
YearFrom:-To:
-
More FiltersMore FiltersSourceLanguage
Done
Filters
Reset
5
result(s) for
"van Rooijen, Carina"
Sort by:
Regulation of Slow and Fast Muscle Myofibrillogenesis by Wnt/β-Catenin and Myostatin Signaling
by
Boonen, Rick
,
Zivkovic, Danica
,
van Rooijen, Carina
in
Animals
,
beta Catenin - metabolism
,
Cell Biology/Developmental Molecular Mechanisms
2009
Deviation from proper muscle development or homeostasis results in various myopathic conditions. Employing genetic as well as chemical intervention, we provide evidence that a tight regulation of Wnt/beta-catenin signaling is essential for muscle fiber growth and maintenance. In zebrafish embryos, gain-of-Wnt/beta-catenin function results in unscheduled muscle progenitor proliferation, leading to slow and fast muscle hypertrophy accompanied by fast muscle degeneration. The effects of Wnt/beta-catenin signaling on fast muscle hypertrophy were rescued by misexpression of Myostatin or p21(CIP/WAF), establishing an in vivo regulation of myofibrillogenesis by Wnt/beta-catenin signaling and Myostatin. Epistatic analyses suggest a possible genetic interaction between Wnt/beta-catenin and Myostatin in regulation of slow and fast twitch muscle myofibrillogenesis.
Journal Article
Identification and Expression of the Family of Classical Protein-Tyrosine Phosphatases in Zebrafish
2010
Protein-tyrosine phosphatases (PTPs) have an important role in cell survival, differentiation, proliferation, migration and other cellular processes in conjunction with protein-tyrosine kinases. Still relatively little is known about the function of PTPs in vivo. We set out to systematically identify all classical PTPs in the zebrafish genome and characterize their expression patterns during zebrafish development. We identified 48 PTP genes in the zebrafish genome by BLASTing of human PTP sequences. We verified all in silico hits by sequencing and established the spatio-temporal expression patterns of all PTPs by in situ hybridization of zebrafish embryos at six distinct developmental stages. The zebrafish genome encodes 48 PTP genes. 14 human orthologs are duplicated in the zebrafish genome and 3 human orthologs were not identified. Based on sequence conservation, most zebrafish orthologues of human PTP genes were readily assigned. Interestingly, the duplicated form of ptpn23, a catalytically inactive PTP, has lost its PTP domain, indicating that PTP activity is not required for its function, or that ptpn23b has lost its PTP domain in the course of evolution. All 48 PTPs are expressed in zebrafish embryos. Most PTPs are maternally provided and are broadly expressed early on. PTP expression becomes progressively restricted during development. Interestingly, some duplicated genes retained their expression pattern, whereas expression of other duplicated genes was distinct or even mutually exclusive, suggesting that the function of the latter PTPs has diverged. In conclusion, we have identified all members of the family of classical PTPs in the zebrafish genome and established their expression patterns. This is the first time the expression patterns of all members of the large family of PTP genes have been established in a vertebrate. Our results provide the first step towards elucidation of the function of the family of classical PTPs.
Journal Article
Generation of a new Tbx6-inducible reporter mouse line to trace presomitic mesoderm derivatives throughout development and in adults
by
Yvernogeau, Laurent
,
Klaus, Anna
,
Carina Van Rooijen
in
Aging
,
Animal models
,
Developmental Biology
2020
ABSTRACT The presomitic mesoderm (PSM) is initially an unsegmented structure localized on each side of the neural tube of the developing embryo, which progressively segments to form the somites. The somites will segregate and partition to generate the dorsal dermomyotome and the ventral sclerotome. Endothelial and myogenic cells of both the trunk and limbs are derived from the somites. There is a lack of efficient reporter mouse models to label and trace the PSM derivatives, despite their crucial contribution to many developmental processes. In this study, we generated a tamoxifen inducible transgenic Tbx6 mouse line, Tg(Tbx6_Cre/ERT2)/ROSA-eYFP, to tag and follow PSM-derivatives from early embryonic stages until adulthood. After induction, endothelial and myogenic cells can be easily identified within the trunk and limbs with proper expression patterns. Since our Tg(Tbx6_Cre/ERT2)/ROSA-eYFP model allows to permanently label the PSM-derived cells, their progeny can be studied at long-term, opening the possibility to perform lineage tracing of stem cells upon aging. Competing Interest Statement The authors have declared no competing interest.
Regulation of Slow and Fast Muscle Myofibrillogenesis by Wnt/beta-Catenin and Myostatin Signaling
2009
Deviation from proper muscle development or homeostasis results in various myopathic conditions. Employing genetic as well as chemical intervention, we provide evidence that a tight regulation of Wnt/[beta]-catenin signaling is essential for muscle fiber growth and maintenance. In zebrafish embryos, gain-of-Wnt/[beta]-catenin function results in unscheduled muscle progenitor proliferation, leading to slow and fast muscle hypertrophy accompanied by fast muscle degeneration. The effects of Wnt/[beta]-catenin signaling on fast muscle hypertrophy were rescued by misexpression of Myostatin or p21.sup.CIP/WAF, establishing an in vivo regulation of myofibrillogenesis by Wnt/[beta]-catenin signaling and Myostatin. Epistatic analyses suggest a possible genetic interaction between Wnt/[beta]-catenin and Myostatin in regulation of slow and fast twitch muscle myofibrillogenesis.
Journal Article
d-Asb11 is an essential mediator of canonical Delta–Notch signalling
by
Brouwers, Anke
,
Diks, Sander H.
,
Bink, Robert J.
in
Animals
,
Biology
,
Biomedical and Life Sciences
2008
The process of lateral inhibition in the canonical Delta-Notch pathway is crucial for cell-fate determination. d-Asb11, a regulator of neural progenitors in zebrafish, is an essential mediator of lateral inhibition through ubiquitylation of Delta A.
In canonical Delta–Notch signalling, expression of Delta activates Notch in neighbouring cells, leading to downregulation of Delta in these cells
1
. This process of lateral inhibition results in selection of either Delta-signalling cells or Notch-signalling cells. Here we show that d-Asb11 is an important mediator of this lateral inhibition. In zebrafish embryos, morpholino oligonucleotide (MO)-mediated knockdown of
d-Asb11
caused repression of specific Delta–Notch elements and their transcriptional targets, whereas these were induced when d-Asb11 was misexpressed. d-Asb11 also activated legitimate Notch reporters cell-non-autonomously
in vitro
and
in vivo
when co-expressed with a Notch reporter. However, it repressed Notch reporters when expressed in Delta-expressing cells. Consistent with these results, d-Asb11 was able to specifically ubiquitylate and degrade DeltaA both
in vitro
and
in vivo
. We conclude that d-Asb11 is a component in the regulation of Delta–Notch signalling, important in fine-tuning the lateral inhibition gradients between DeltaA and Notch through a cell non-autonomous mechanism.
Journal Article