Sandbox Reserved 1645

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'''Fetal''' '''cardiovascular''' development:
'''Fetal''' '''cardiovascular''' development:
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The FBN-1 gene is involved in a variety of embryonic developmental programs. The microfibrils that are made from fibrillin-1 contribute to both elastic and non-elastic structures. The formation of the elastic fibers in the heart valves and the aorta require the involvement of both FBN-1 and FBN-2.It has been shown that both FBN-1 and FBN-2, along with the other components of elastic fibers, are expressed in the embryonic semilunar valves as early as 4 weeks of gestation. These molecules interact to form the elastic fibers in the ventricularis layer of the semilunar valves. Fibrillin-1 and fibrillin-2 are also crucial for the development of elastic fibers in the aorta. While expression of fibrillin-2 decreases significantly after fetal development, the expression of fibrillin-1 continues into adulthood. This supports the idea that fibrilin-2 dictates the development of early elastic fibers, while fibrillin-1 provides the structural support of mature elastic fibers.<ref>Quondamatteo F, Reinhardt DP, Charbonneau NL, Pophal G, Sakai LY, Herken R (December 2002). "Fibrillin-1 and fibrillin-2 in human embryonic and early fetal development". Matrix Biology. 21 (8): 637–46. doi:10.1016/s0945-053x(02)00100-2. PMID 12524050. / Ammash NM, Sundt TM, Connolly HM (January 2008). "Marfan syndrome-diagnosis and management". Current Problems in Cardiology. 33 (1): 7–39. doi:10.1016/j.cpcardiol.2007.10.001. PMID 18155514. / Votteler M, Berrio DA, Horke A, Sabatier L, Reinhardt DP, Nsair A, Aikawa E, Schenke-Layland K (June 2013). "Elastogenesis at the onset of human cardiac valve development". Development. 140 (11): 2345–53. doi:10.1242/dev.093500. PMC 3912871. PMID 23637335.</ref>
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The FBN-1 gene is involved in a variety of embryonic developmental programs. The microfibrils that are made from fibrillin-1 contribute to both elastic and non-elastic structures. The formation of the elastic fibers in the heart valves and the aorta require the involvement of both FBN-1 and FBN-2.It has been shown that both FBN-1 and FBN-2, along with the other components of elastic fibers, are expressed in the embryonic semilunar valves as early as 4 weeks of gestation. These molecules interact to form the elastic fibers in the ventricularis layer of the semilunar valves. Fibrillin-1 and fibrillin-2 are also crucial for the development of elastic fibers in the aorta. While expression of fibrillin-2 decreases significantly after fetal development, the expression of fibrillin-1 continues into adulthood. This supports the idea that fibrillin-2 dictates the development of early elastic fibers, while fibrillin-1 provides the structural support of mature elastic fibers.<ref>Quondamatteo F, Reinhardt DP, Charbonneau NL, Pophal G, Sakai LY, Herken R (December 2002). "Fibrillin-1 and fibrillin-2 in human embryonic and early fetal development". Matrix Biology. 21 (8): 637–46. doi:10.1016/s0945-053x(02)00100-2. PMID 12524050. / Ammash NM, Sundt TM, Connolly HM (January 2008). "Marfan syndrome-diagnosis and management". Current Problems in Cardiology. 33 (1): 7–39. doi:10.1016/j.cpcardiol.2007.10.001. PMID 18155514. / Votteler M, Berrio DA, Horke A, Sabatier L, Reinhardt DP, Nsair A, Aikawa E, Schenke-Layland K (June 2013). "Elastogenesis at the onset of human cardiac valve development". Development. 140 (11): 2345–53. doi:10.1242/dev.093500. PMC 3912871. PMID 23637335.</ref>
== Diseases caused by mutation ==
== Diseases caused by mutation ==

Revision as of 16:03, 18 January 2022

This Sandbox is Reserved from 26/11/2020, through 26/11/2021 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1643 through Sandbox Reserved 1664.
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Fibrillin-1

3D structure of fibrillin-1 (PDB ID : 2W86)

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References

  1. Handford, P. A. (2000). Fibrillin-1, a calcium binding protein of extracellular matrix. Biochimica et Biophysica Acta (BBA) - Molecular Cell Research, 1498(2), 84–90. https://doi.org/10.1016/S0167-4889(00)00085-9
  2. Zhang H, Apfelroth SD, Hu W, Davis EC, Sanguineti C, Bonadio J, Mecham RP, Ramirez F (March 1994). "Structure and expression of fibrillin-2, a novel microfibrillar component preferentially located in elastic matrices". The Journal of Cell Biology. 124 (5): 855–63. doi:10.1083/jcb.124.5.855. PMC 2119952. PMID 8120105.
  3. Corson GM, Charbonneau NL, Keene DR, Sakai LY (March 2004). "Differential expression of fibrillin-3 adds to microfibril variety in human and avian, but not rodent, connective tissues". Genomics. 83 (3): 461–72. doi:10.1016/j.ygeno.2003.08.023. PMID 14962672.
  4. Gansner JM, Madsen EC, Mecham RP, Gitlin JD (October 2008). "Essential role for fibrillin-2 in zebrafish notochord and vascular morphogenesis". Developmental Dynamics. 237 (10): 2844–61. doi:10.1002/dvdy.21705. PMC 3081706. PMID 18816837.
  5. Sandra Schrenk Carola Cenzi Thomas Bertalot Maria Teresa Conconi Rosa Di Liddo, (2017), pages: 1213-1223,https://doi.org/10.3892/ijmm.2017.3343
  6. Weizmann Institute of Science, FBN1 gene, last consulted [09/01/22],https://www.genecards.org/cgi-bin/carddisp.pl?gene=FBN1
  7. Robert N. Ono, Gerhard Sengle, Noe L. Charbonneau, Valerie Carlberg, Hans Peter Bächinger, Takako Sasaki, Sui Lee-Arteaga, Lior Zilberberg, Daniel B. Rifkin, Francesco Ramirez, Mon-LiChu, Lynn Y.Sakai. (2009). Latent Transforming Growth Factor β-binding Proteins and Fibulins Compete for Fibrillin-1 and Exhibit Exquisite Specificities in Binding Sites. Journal of Biological Chemistry, volume (284). https://www.sciencedirect.com/science/article/pii/S0021925818665056
  8. Shazia S. Chaudhry, Stuart A. Cain, Amanda Morgan, Sarah L. Dallas, C. Adrian Shuttleworth, Cay M. Kielty; Fibrillin-1 regulates the bioavailability of TGFβ1. J Cell Biol 29 January 2007; 176 (3): 355–367. doi: https://doi.org/10.1083/jcb.200608167
  9. Quondamatteo F, Reinhardt DP, Charbonneau NL, Pophal G, Sakai LY, Herken R (December 2002). "Fibrillin-1 and fibrillin-2 in human embryonic and early fetal development". Matrix Biology. 21 (8): 637–46. doi:10.1016/s0945-053x(02)00100-2. PMID 12524050. / Ammash NM, Sundt TM, Connolly HM (January 2008). "Marfan syndrome-diagnosis and management". Current Problems in Cardiology. 33 (1): 7–39. doi:10.1016/j.cpcardiol.2007.10.001. PMID 18155514. / Votteler M, Berrio DA, Horke A, Sabatier L, Reinhardt DP, Nsair A, Aikawa E, Schenke-Layland K (June 2013). "Elastogenesis at the onset of human cardiac valve development". Development. 140 (11): 2345–53. doi:10.1242/dev.093500. PMC 3912871. PMID 23637335.
  10. D. Pollard, C.Earnshaw, J. Lippincott-Schwartz, G. T.Johson, Cell Biology, Third Edition.
  11. E. Martínez-Quintana, F. Rodríguez-González, P. Garay-Sánchez, and A. Tugoresb. (2014).A Novel Fibrillin 1 Gene Mutation Leading to Marfan Syndrome with Minimal Cardiac Features. Molecular Syndormology, volume (5), 236-240.https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4188161/
  12. TGFBR2.https://www.omim.org/entry/190182?search=TGFBR2&highlight=tgfbr2
  13. Am J Hum Genet.(1999), Cysteine Substitutions in Epidermal Growth Factor–Like Domains of Fibrillin-1: Distinct Effects on Biochemical and Clinical Phenotypes, https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1288233/
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