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The PDB 2EZ6 is the crystal structure for the protein RNaseIII. However the complete structure involves the double stranded RNA binding domain binds to RNA, which plays an important rule in the RNA silencing inducing complex (RISC).
The PDB 2EZ6 is the crystal structure for the protein RNaseIII. However the complete structure involves the double stranded RNA binding domain binds to RNA, which plays an important rule in the RNA silencing inducing complex (RISC).
More specifically, the protein 2EZ6 is a model of the siRNA duplex, which is sandwiched between two dsRBDs in the front and D1 and D2 of RHA helicase core in the back without stereo clashes. The model represents a working model for siRNA duplex recognition and partial unwinding by the full-length RHA protein. The RNA helicase RHA is the loading factor for the RISC complex. RHA has dsRBD1/dsRBD2 domains which facilitates in binding to siRNA. Furthermore,such a binding mode was observed in the crystal structure of A. aeolicus RNaseIII-dsRBD in complex with short RNA duplex.
More specifically, the protein 2EZ6 is a model of the siRNA duplex, which is sandwiched between two dsRBDs in the front and D1 and D2 of RHA helicase core in the back without stereo clashes. The model represents a working model for siRNA duplex recognition and partial unwinding by the full-length RHA protein. The RNA helicase RHA is the loading factor for the RISC complex. RHA has dsRBD1/dsRBD2 domains which facilitates in binding to siRNA. Furthermore,such a binding mode was observed in the crystal structure of A. aeolicus RNaseIII-dsRBD in complex with short RNA duplex.
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Although RHA is proposed to facilitate RISC assembly, which enables the binding of siRNA duplex and its interactions with Ago2, TRBP and Dicer. However, the structural and functional features of RHA in dsRNA binding and RISC assembly are largely unknown. Therefore the original study the crystal structures investigated and determined structural insights into siRNA duplex recognition and RISC assembly facilitated by RHA dsRBD domains.
Although RHA is proposed to facilitate RISC assembly, which enables the binding of siRNA duplex and its interactions with Ago2, TRBP and Dicer. However, the structural and functional features of RHA in dsRNA binding and RISC assembly are largely unknown. Therefore the original study the crystal structures investigated and determined structural insights into siRNA duplex recognition and RISC assembly facilitated by RHA dsRBD domains.
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The PDB 2EZ6 is the Ribonuclease III (RNase III)protein. Members of the ribonuclease III (RNase III) family are double-stranded RNA (dsRNA) specific endoribonucleases characterized by a signature motif in their active centers and a two-base 3' overhang in their productsRNase III represents a highly conserved family of double-stranded RNA (dsRNA) specific endoribonucleases. The primary functions of RNase III involves RNA processing and posttranscriptional gene-expression control. RNase III has helped in understanding the importance of the role of the Dicer in RNA interference. Dicer produces small interfering RNAs. The RNA interference is a range of class of gene-silencing systems initiated by dsRNA
The PDB 2EZ6 is the Ribonuclease III (RNase III)protein. Members of the ribonuclease III (RNase III) family are double-stranded RNA (dsRNA) specific endoribonucleases characterized by a signature motif in their active centers and a two-base 3' overhang in their productsRNase III represents a highly conserved family of double-stranded RNA (dsRNA) specific endoribonucleases. The primary functions of RNase III involves RNA processing and posttranscriptional gene-expression control. RNase III has helped in understanding the importance of the role of the Dicer in RNA interference. Dicer produces small interfering RNAs. The RNA interference is a range of class of gene-silencing systems initiated by dsRNA
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The RNase III family can be divided into four classes based on increasing molecular weight and complexity of the polypeptide chain. The four classes are bacterial RNase III, Saccharomyces cerevisiae Rnt1p, Drosophila melanogaster Drosha, and Homo sapiens Dicer.The bacterial RNase III proteins, such as Escherichia coli RNase III (Ec-RNase III) and Aquifex aeolicus RNase III (Aa-RNase III), are composed of an endonuclease domain (endoND) followed by a dsRNA binding domain (dsRBD).The homodimeric Ec-RNase III was first discovered in 1968 and ever since it has become the most extensively studied member of the family. RNase III has the ability to affect the gene expression in either of two ways: as a processing enzyme or as a binding protein. As a processing enzyme, RNase III cleaves both natural and synthetic dsRNA into small duplex products averaging 10–18 base pairs in length. As a binding protein, RNase III binds and stabilizes certain RNAs, thus suppressing the expression of certain genes. Here the crystal structure of an RNase III-product complex, the first catalytic complex observed for the family.The RNase III-product complex has a 7 residue linker within the protein, which facilitates induced fit in protein-RNA recognition. A pattern of protein-RNA interactions known as four RNA binding motifs in RNase III and three protein-interacting boxes in dsRNA, is responsible for substrate specificity.Meanwhile conserved amino acid residues and divalent cations are responsible for scissile-bond cleavage. Studying the structure of RNase III is important, because it can be extrapolated to other structures of the RNase III family.
The RNase III family can be divided into four classes based on increasing molecular weight and complexity of the polypeptide chain. The four classes are bacterial RNase III, Saccharomyces cerevisiae Rnt1p, Drosophila melanogaster Drosha, and Homo sapiens Dicer.The bacterial RNase III proteins, such as Escherichia coli RNase III (Ec-RNase III) and Aquifex aeolicus RNase III (Aa-RNase III), are composed of an endonuclease domain (endoND) followed by a dsRNA binding domain (dsRBD).The homodimeric Ec-RNase III was first discovered in 1968 and ever since it has become the most extensively studied member of the family. RNase III has the ability to affect the gene expression in either of two ways: as a processing enzyme or as a binding protein. As a processing enzyme, RNase III cleaves both natural and synthetic dsRNA into small duplex products averaging 10–18 base pairs in length. As a binding protein, RNase III binds and stabilizes certain RNAs, thus suppressing the expression of certain genes. Here the crystal structure of an RNase III-product complex, the first catalytic complex observed for the family.The RNase III-product complex has a 7 residue linker within the protein, which facilitates induced fit in protein-RNA recognition. A pattern of protein-RNA interactions known as four RNA binding motifs in RNase III and three protein-interacting boxes in dsRNA, is responsible for substrate specificity.Meanwhile conserved amino acid residues and divalent cations are responsible for scissile-bond cleavage. Studying the structure of RNase III is important, because it can be extrapolated to other structures of the RNase III family.
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This is the scene for the dsRBD1 binding to RNA<scene name='76/769328/Dsrbd1_binding_site/1'>dsRBD1 Binding to RNA</scene>
This is the scene for the dsRBD1 binding to RNA<scene name='76/769328/Dsrbd1_binding_site/1'>dsRBD1 Binding to RNA</scene>

Revision as of 22:40, 9 October 2017

2EZ6 Crystal Structure

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Irfan Saleh

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