scholarly journals Cornelia de Lange Syndrome: NIPBL haploinsufficiency downregulates canonical Wnt pathway in zebrafish embryos and patients fibroblasts

2013 ◽  
Vol 4 (10) ◽  
pp. e866-e866 ◽  
Author(s):  
A Pistocchi ◽  
G Fazio ◽  
A Cereda ◽  
L Ferrari ◽  
L R Bettini ◽  
...  
2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Paolo Grazioli ◽  
Chiara Parodi ◽  
Milena Mariani ◽  
Daniele Bottai ◽  
Elisabetta Di Fede ◽  
...  

AbstractCornelia de Lange Syndrome (CdLS) is a rare developmental disorder affecting a multitude of organs including the central nervous system, inducing a variable neurodevelopmental delay. CdLS malformations derive from the deregulation of developmental pathways, inclusive of the canonical WNT pathway. We have evaluated MRI anomalies and behavioral and neurological clinical manifestations in CdLS patients. Importantly, we observed in our cohort a significant association between behavioral disturbance and structural abnormalities in brain structures of hindbrain embryonic origin. Considering the cumulative evidence on the cohesin-WNT-hindbrain shaping cascade, we have explored possible ameliorative effects of chemical activation of the canonical WNT pathway with lithium chloride in different models: (I) Drosophila melanogaster CdLS model showing a significant rescue of mushroom bodies morphology in the adult flies; (II) mouse neural stem cells restoring physiological levels in proliferation rate and differentiation capabilities toward the neuronal lineage; (III) lymphoblastoid cell lines from CdLS patients and healthy donors restoring cellular proliferation rate and inducing the expression of CyclinD1. This work supports a role for WNT-pathway regulation of CdLS brain and behavioral abnormalities and a consistent phenotype rescue by lithium in experimental models.


2020 ◽  
Author(s):  
Paolo Grazioli ◽  
Chiara Parodi ◽  
Milena Mariani ◽  
Daniele Bottai ◽  
Elisabetta Di Fede ◽  
...  

ABSTRACTCornelia de Lange Syndrome (CdLS) is a rare developmental disorder affecting a multitude of organs including the central nervous system, inducing a variable neurodevelopmental delay. CdLS malformations derive from deregulation of developmental pathways, inclusive of the canonical WNT pathway.We have evaluated MRI anomalies and behavioral and neurological clinical manifestations in CdLS patients. Importantly, we observed in our cohort a significant association between behavioral disturbance and structural abnormalities in brain structures of hindbrain embryonic origin.Considering the cumulative evidence on the cohesin-WNT-hindbrain shaping cascade, we have explored possible ameliorative effects of chemical activation of the canonical WNT pathway with lithium chloride in different models: (I) Drosophila melanogaster CdLS model showing a significant rescue of mushroom bodies morphology in the adult flies; (II) mouse neural stem cells restoring physiological levels in proliferation rate and differentiation capabilities toward the neuronal lineage; (III) lymphoblastoid cell lines from CdLS patients and healthy donors restoring cellular proliferation rate and inducing the expression of CyclinD1. This work supports a role for WNT-pathway regulation of CdLS brain and behavioral abnormalities and a consistent phenotype rescue by lithium in experimental models.


2005 ◽  
Vol 65 (14) ◽  
pp. 6199-6206 ◽  
Author(s):  
Aykut Üren ◽  
Shannon Fallen ◽  
Hang Yuan ◽  
Alp Usubütün ◽  
Türkan Küçükali ◽  
...  

2009 ◽  
Vol 28 (2) ◽  
pp. 121-122
Author(s):  
D. Takashi ◽  
B. John ◽  
P. Prem ◽  
T. Jennifer

Biochimie ◽  
2014 ◽  
Vol 106 ◽  
pp. 149-156 ◽  
Author(s):  
Cheng-gui Miao ◽  
Ying-ying Yang ◽  
Xu He ◽  
Cheng Huang ◽  
Yan Huang ◽  
...  

2010 ◽  
pp. OR38-3-OR38-3
Author(s):  
Carles Gaston-Massuet ◽  
Cynthia L Andoniadou ◽  
Massimo Signore ◽  
Sajutha Jayakody ◽  
Nicoletta Charolidi ◽  
...  

Development ◽  
2001 ◽  
Vol 128 (4) ◽  
pp. 581-590 ◽  
Author(s):  
M. Herman

In Caenorhabditis elegans, Wnt signaling pathways are important in controlling cell polarity and cell migrations. In the embryo, a novel Wnt pathway functions through a (beta)-catenin homolog, WRM-1, to downregulate the levels of POP-1/Tcf in the posterior daughter of the EMS blastomere. The level of POP-1 is also lower in the posterior daughters of many anteroposterior asymmetric cell divisions during development. I have found that this is the case for of a pair of postembryonic blast cells in the tail. In wild-type animals, the level of POP-1 is lower in the posterior daughters of the two T cells, TL and TR. Furthermore, in lin-44/Wnt mutants, in which the polarities of the T cell divisions are frequently reversed, the level of POP-1 is frequently lower in the anterior daughters of the T cells. I have used a novel RNA-mediated interference technique to interfere specifically with pop-1 zygotic function and have determined that pop-1 is required for wild-type T cell polarity. Surprisingly, none of the three C. elegans (beta)-catenin homologs appeared to function with POP-1 to control T cell polarity. Wnt signaling by EGL-20/Wnt controls the migration of the descendants of the QL neuroblast by regulating the expression the Hox gene mab-5. Interfering with pop-1 zygotic function caused defects in the migration of the QL descendants that mimicked the defects in egl-20/Wnt mutants and blocked the expression of mab-5. This suggests that POP-1 functions in the canonical Wnt pathway to control QL descendant migration and in novel Wnt pathways to control EMS and T cell polarities.


Sign in / Sign up

Export Citation Format

Share Document