Information about Desmin

desmin
Identifiers
SymbolDES
Entrez1674
HUGO2770
OMIM125660
RefSeqNM_001927
UniProtP17661
Other data
LocusChr. 2 q35
Desmin is a type III intermediate filament found near the Z line in sarcomeres. It was first purified in 1977, the gene was characterized in 1989, and the first knock-out mouse was created in 1996.[1] Desmin is only expressed in vertebrates, however homologous proteins are found in many organisms.[2] It is a 52kD protein that is a subunit of intermediate filaments in skeletal muscle tissue, smooth muscle tissue, and cardiac muscle tissue.[3]

Suggested Functions

The function of desmin has been deduced through studies in knockout mice, however the underlying mechanism of its action is not known. These possibilities may be the result of interactions with other proteins and not desmin itself. More research needs to be done on how desmin's expression and interactions in the muscle cell in order to determine its exact function.

Desmin is one of the earliest protein markers for muscle tissue in embryogenesis as it is detected in the somites of myoblasts.[2] Although it is present early in the development of muscle cells it is expressed at low levels and increases as the cell nears terminal differentiation the muscle cell matures only desmin is present. A similar protein, vimentin, is present in higher amounts during embryogenesis while desmin is present in higher amounts after differentiation. This suggests that there may be some interaction between the two in determining muscle cell differentiation. However desmin knockout mice develop normally and only experience defects later in life.[3] Since desmin is expressed at a low level during differentiation another protein may be able to compensate for desmin's function early in development but not later on.[4]

Desmin is also important in muscle cell architecture and structure since it connects many components of the cytoplasm. The sarcomere is a component of muscle cells composed of filaments and myosin motor proteins which allow the cell to contract. Desmin forms a scaffold around the Z-disk of the sarcomere and connects the Z-disk to the subsarcolemmal cytoskeleton (the cytoplasmic part of the muscle cell plasma membrane).[5] It links the myofibrils laterally by connecting the Z-disks.[2] Through its connection to the sarcomere Desmin connects the contractile apparatus to the cell nucleus, mitochondria, and post-synaptic areas of motor endplates.[2] These connections maintain the structural and mechanical integrity of the cell during contraction while also helping in force transmission and longitudinal load bearing.[5] [6] There is some evidence that desmin may also connect the sarcomere to the extracellular matrix (ECM) through desmosomes which could be important in signalling between the ECM and the sarcomere which could regulate muscle contraction and movement.[6]

Finally, desmin may be important in mitochondria function. When desmin is not functioning properly there is improper mitochondrial distribution, number, morphology and function.[7] Since desmin links the mitochondria to the sarcomere it may transmit information about contractions and energy need and through this regulate the aerobic respiration rate of the muscle cell.

Knockout Phenotype

When the gene for desmin is knocked out it is no longer able to function properly. Mice with the desmin knockout gene develop normally and are fertile, however soon after birth they begin to show defects in skeletal, smooth and cardiac muscle; in particular the diaphragm and heart are affected.[3] The mice without desmin are weaker and fatigue more easily than wild type mice and the muscle fibers are more likely to be damaged during contraction, presumably because the desmin is responsible for keeping the muslce fibers aligned.[3] Mice without desmin also have impaired mitochondrial function.

Associated Diseases

Desmin Related Myopathy (DRM or Desminopathy) is a subgroup of the myofibrillar myopathy diseases and is the result of a mutation in the gene that codes for desmin which prevents it from forming protein filaments, instead forming aggregates of desmin and other proteins throughout the cell.[2] The sarcomeres become misaligned and result in the disorganization of muscle fibers.[2] This mutation also results in muscle cell death by apoptosis and necrosis.[2] The muscle cell may also be disorganized because the aggregates may interrupt other filament structures and/or normal cellular function.[7] Desminopathies are very rare diseases and only 60 patients have been diagnosed with so far, however this number probably does not accurately represent the population due to frequent mis or under diagnosis.[7] Common symptoms of the disease are weakness and atrophy in the distal muscles of the lower limbs which progresses to the hands and arms, then to the trunk, neck and face. Respiratory impairment often follows. There are three major types of inheritance for this disease: Autosomal dominant, autosomal recessive and de novo. The most severe form is autosomal recessive and it also has the earliest onset.[7] It usually involves all three muscle tissues and leads to cardiac and respiratory failure as well as intestinal obstruction.[7] Autosomal Dominant inheritance shows a later onset and slower progression. It usually involves only one or two of the muscle tissues.[7] De novo diseases occur when a new mutation arises in the person that was not inherited through either parent. This form has a wide range of symptoms and varies depending on the mutation made.[7] There is currently no cure for the disease but treatments to help the symptoms are available.[7]

Structure

There are three major domains to this protein: a conserved alpha helix rod, a variable non alpha helix head, and a carboxy-terminal tail.[2] Desmin, as all intermediate filaments, shows no polarity when assmebled.[2] The rod domain consists of 308 amino acids with parallel alpha helical coiled coil dimers and three linkers to disrupt it.[2] The rod connects to the head domain. The head domain 84 amino acids with many arginine, serine, and aromatic residues and is important in filament assembly and dimer-dimer interactions.[2] The tail domain is responsible for the integration of filaments and interaction with proteins and organelles.

References

1. ^ Costa, M.; Escaleria, A., Cataldo, A., Oliveria, F., Mermelstein, C. (December 2004). Desmin: molecular interactions and putative functions of the muscle intermediate filament protein. Brazilian Journal of Medical and Biological Research 37 (12): 1819-1830. ISSN 0100-879X. Retrieved on 2007-03-03. 
2. ^ Bar, H; Strelkov, S., Sjöberg, G., Aebi, U., and H. Herrmann (2004). "The biology of desmin filaments: how do mutations affect their structure, assembly, and organization?". Journal of Structural Biology 148: 137-152. Retrieved on 2007-03-03. 
3. ^ Li, Z.; Agbulut, O., Butler-Browne,G., Carlsson, L., Thornell, L., Babinet, C., and D. Paulin (1997). "Desmin Is Essential for the Tensile Strength and Integrity of Myofibrils but Not for Myogenic Commitment, Differentiation, and Fusion of Skeletal Muscle". Journal of Cell Biology 139 (1): 129-144. Retrieved on 2007-03-03. 
4. ^ Dystrophin (March 16, 1997). Retrieved on 2007-04-20.
5. ^ Paulin, D.; Li, Z. (2004). "Desmin: a major intermediate filament protein essential for the structural integrity and function of muscle". Experimental Cell Research 301 (1): 1-7. Retrieved on 2007-03-03. 
6. ^ Shah, S.; Davis, J., Weisleder, N., Kostavassili, I., McCulloch, A., Ralston, E., Capetanaki, Y., and R. Lieber (2004). "Structural and Functional Roles of Desmin in Mouse Skeletal Muscle during Passive Deformation". Biophysical Journal 86: 2993-3008. Retrieved on 2007-03-03. 
7. ^ Goldfarb, L.; Vicart, P., Goebel, H., and M. Dalakas (2004). "Desmin Myopathy". Brain 127: 723-734. Retrieved on 2007-03-03. 

External links



The Entrez Global Query Cross-Database Search System is a powerful federated search engine, or web portal that allows users to search many discrete health sciences databases at the National Center for Biotechnology Information (NCBI) website.
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Hugo is a male given name, a latinized form of the name Hugh, a German/Teutonic name meaning "Bright in Mind and Spirit".

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Swiss-Prot is a manually curated biological database of protein sequences. Swiss-Prot was created in 1986 by Amos Bairoch during his PhD and developed by the Swiss Institute of Bioinformatics and the European Bioinformatics Institute.
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locus (plural loci) is a fixed position on a chromosome, such as the position of a gene or a biomarker (genetic marker). A variant of the DNA sequence at a given locus is called an allele. The ordered list of loci known for a particular genome is called a genetic map.
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Intermediate filaments (IFs) are cytoskeletal structures formed by members of a family of related proteins. Intermediate filaments have a diameter between that of actin (microfilaments) and microtubules.
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A sarcomere is the basic unit of a muscle's cross-striated myofibril. Sarcomeres are multi-protein complexes composed of three different filament systems.
  • The thick filament system is composed of myosin protein which is connected from the M-line to the Z-disc by Titin

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A gene is a locatable region of genomic sequence, corresponding to a unit of inheritance, which is associated with regulatory regions, transcribed regions and/or other functional sequence regions.
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Skeletal muscle is a type of striated muscle, usually attached to the skeleton. Skeletal muscles are used to create movement, by applying force to bones and joints; via contraction.
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Smooth muscle is a type of non-striated muscle, found within the "walls" of hollow organs and elsewhere like the bladder and abdominal cavity, the uterus, male and female reproductive tracts, the gastrointestinal tract, the respiratory tract, the vasculature, the skin and the
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'Cardiac muscle' is a type of involuntary striated muscle found within the heart. Its function is to "pump" blood through the circulatory system by contracting.
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In the developing vertebrate embryo, somites (or primitive segments in older texts) are masses of mesoderm distributed along the two sides of the neural tube and that will eventually become dermis (dermatome), skeletal muscle (myotome), and vertebrae (sclerotome).
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A myoblast is a type of stem cell that exists in muscles. Skeletal muscle cells are called muscle fibers and are made when myoblasts fuse together; muscle fibers therefore have multiple nuclei.

Myoblasts that do not form muscle fibers differentiate into satellite cells.
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Vimentin is a member of the intermediate filament family of proteins. Intermediate filaments are an important structural feature of eukaryotic cells. They, along with microtubules and actin microfilaments, make up the cytoskeleton.
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Cytoplasm is a gelatinous, semi-transparent fluid that fills most cells. Eukaryotic cells contain a nucleus that is kept separate from the cytoplasm by a double membrane layer. The cytoplasm has three major elements; the cytosol, organelles and inclusions.
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A sarcomere is the basic unit of a muscle's cross-striated myofibril. Sarcomeres are multi-protein complexes composed of three different filament systems.
  • The thick filament system is composed of myosin protein which is connected from the M-line to the Z-disc by Titin

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Myosins are a large family of motor proteins found in eukaryotic tissues. They are responsible for actin-based motility.

Structure and Function

Domains

Most myosin molecules are composed of both a head and a tail domain.
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Myofibrils (obsolete term: sarcostyles) are cylindrical organelles, found within muscle cells. They are bundles of actomyosin filaments that run from one end of the cell to the other and are attached to the cell surface membrane at each end.
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nucleus (3) ribosome (4) vesicle (5) rough endoplasmic reticulum (ER) (6) Golgi apparatus (7) Cytoskeleton (8) smooth ER (9) mitochondria (10) vacuole (11) cytoplasm (12) lysosome (13) centrioles]]

In cell biology, the nucleus (pl.
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extracellular matrix (ECM) is the extracellular part of animal tissue that usually provides structural support to the cells in addition to performing various other important functions. The extracellular matrix is the defining feature of connective tissue in animals.
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diaphragm is a sheet of muscle extending across the bottom of the ribcage. The diaphragm separates the thoracic cavity from the abdominal cavity and performs an important function in respiration.
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heart is a muscular organ responsible for pumping blood through the blood vessels by repeated, rhythmic contractions, or a similar structure in the annelids, mollusks, and arthropods.
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In biology, a filament is a long chain of proteins, such as those found in hair, muscle, or in flagella.

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alpha helix (α-helix) is a right-handed coiled conformation, resembling a spring, in which every backbone N-H group donates a hydrogen bond to the backbone C=O group of the amino acid four residues earlier ( hydrogen bonding). (See also helix.
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Intermediate filaments (IFs) are cytoskeletal structures formed by members of a family of related proteins. Intermediate filaments have a diameter between that of actin (microfilaments) and microtubules.
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An ISSN, or International Standard Serial Number, is a unique eight-digit number used to identify a print or electronic periodical publication. The ISSN system was adopted as international standard ISO 3297 in 1975. The TC 46/SC 9 is responsible for the standard.
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Proteins are large organic compounds made of amino acids arranged in a linear chain and joined together by peptide bonds between the carboxyl and amino groups of adjacent amino acid residues.
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