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The macromolecular SMN complex facilitates the formation of Sm-class ribonucleoproteins involved in mRNA processing (UsnRNPs). While biochemical studies have revealed key activities of the SMN complex, its structural investigation is lagging behind. Here we report on the identification and structural determination of the SMN complex from the lower eukaryote Schizosaccharomyces pombe, consisting of SMN, Gemin2, 6, 7, 8 and Sm proteins. The core of the SMN complex is formed by several copies of SMN tethered through its C-terminal alpha-helices arranged with alternating polarity. This creates a central platform onto which Gemin8 binds and recruits Gemins 6 and 7. The N-terminal parts of the SMN molecules extrude via flexible linkers from the core and enable binding of Gemin2 and Sm proteins. Our data identify the SMN complex as a multivalent hub where Sm proteins are collected in its periphery to allow their joining with UsnRNA.
The biogenesis of spliceosomal UsnRNPs is a highly elaborate cellular process that occurs both in the nucleus and the cytoplasm. A major part of the process is the assembly of the Sm-core particle, which consists of a ring shaped heptameric unit of seven Sm proteins (SmD1•D2•F•E•G•D3•B) wrapped around a single stranded RNA motif (termed Sm-site) of spliceosomal UsnRNAs. This process occurs mainly in the cytoplasm by the sequential action of two biogenesis factors united in PRMT5- and SMN-complexes, respectively. The PRMT5-complex composed of the three proteins PRMT5, WD45 and pICln is responsible for the symmetric dimethylation of designated arginine residues in the C-terminal tails of some Sm proteins. The action of the PRMT5- complex results in the formation of assembly incompetent Sm-protein intermediates sequestered by the assembly chaperone pICln (SmD1•D2•F•E•G•pICln and pICln•D3•B). Due to the action of pICln, the Sm proteins in these complexes fail to interact with UsnRNAs to form the mature Sm-core. This kinetic trap is relieved by the action of the SMN-complex, which removes the pICln subunit and facilitates the binding of the Sm-core intermediates to the UsnRNA, thus forming the mature Sm-core particle. The human SMN complex consists of 9 subunits termed SMN, Gemin2-8 and Unrip. So far, there are no available atomic structures of the whole SMN-complex, but structures of isolated domains and subunits of the complex have been reported by several laboratories in the past years. The lack of structural information about the entire SMN complex most likely lies in the biophysical properties of the SMN complex, which possesses an oligomeric SMN core, and many unstructured and flexible regions. These were the biggest roadblocks for its structural elucidation using traditional methods such as X-ray crystallography, NMR or CryoEM. To circumvent these obstacles and to obtain structural insight into the SMN-complex, the Schizosaccharomyces pombe SMN complex was used as a model system in this work. In a collaboration with the laboratory of Dr. Remy Bordonne (IGMM, CNRS, France), we could show that the SpSMN complex is minimalistic in its composition, consisting only of SpSMN, SpGemin2, SpGemin8, SpGemin7 and SpGemin6. Using biochemical experiments, an interaction map of the SpSMN complex was established which was found to be highly similar to the reported map of the human SMN complex. The results of this study clearly show that SpSMN is the oligomeric core of the complex and provides the binding sites for the rest of the subunits. Through biochemical and X-ray scattering experiments, the properties of the SpSMN subunit such as oligomerization viii and intrinsic disorder, were shown to determine the overall biophysical characteristics of the whole complex. The structural basis of SpSMN oligomerization is presented in atomic detail which establishes a dimeric SpSMN as the fundamental unit of higher order SpSMN oligomers. In addition to oligomerization, the YG-box domain of SpSMN serves as the binding site for SpGemin8. The unstructured region of SpSMN imparts an unusual large hydrodynamic size, intrinsic disorder, and flexibility to the whole complex. Interestingly, these biophysical properties are partially mitigated by the presence of SpGemin8•SpGemin7•SpGemin6 subunits. These results classify the SpSMN complex as a multidomain entity connected with flexible linkers and characterize the SpSMN subunit to be the central oligomeric structural organizer of the whole complex.
Most protein-encoding genes in Eukaryotes are separated into alternating coding and non-coding sequences (exons and introns). Following the transcription of the DNA into pre-messenger RNA (pre-mRNA) in the nucleus, a macromolecular complex termed spliceosome removes the introns and joins the exons to generate mature mRNA that is exported to the cytoplasm. There, it can be interpreted by ribosomes to generate proteins. The spliceosome consists of five small nuclear ribonucleic acids (snRNAs) and more than 150 proteins. Integral components of this complex are RNA-protein particles (RNPs) composed of one or two snRNAs, seven common (Sm) and a various number of snRNP-specific proteins. The Sm proteins form a ring-structure around a conserved site of the snRNA called Sm site. In vitro, Sm proteins (B/B', D1, D2, D3, E, F, G) and snRNA readily assemble to form snRNPs. In the context of the cell, however, two macromolecular trans-acting factors, the PRMT5 (protein arginine methyltransferases type 5) and the SMN (survival motor neuron) complex, are needed to enable this process. Initially, the Sm proteins in the form of heterooligomers D1/D2, D3/B and F/E/G are sequestered by the type II methyltransferase PRMT5. pICln, a component of the PRMT5 complex, readily interacts with Sm proteins to form two distinct complexes. Whereas the first one comprises pICln and D3/B the second one forms a ring consisting of pICln, D1/D2 and F/E/G (6S). It has been found that pICln prevents the premature interaction of snRNAs with the Sm proteins in these complexes and thus functions as an assembly chaperone imposing a kinetic trap upon the further assembly of snRNPs. PRMT5 catalyzes the symmetrical dimethylation of arginine residues in B/B', D1 and D3 increasing their affinity towards the SMN complex. Finally, the SMN complex interacts with the pICln-Sm protein complexes, expels pICln and mediates snRNP assembly in an ATP-dependent reaction. So far, only little is known about the action of PRMT5 in the early phase of snRNP assembly and especially how the 6S complex is formed. Studies of this have so far been hampered by the unavailability of soluble and biologically active PRMT5 enzyme. The composition of the SMN complex and possible functions of individual subunits have been elucidated or hypothesized in recent years. Still, the exact mechanism of the entire machinery forming snRNPs is poorly understood. In vivo, reduced production of functional SMN protein results in the neurodegenerative disease spinal muscular atrophy (SMA). How specific SMN mutations that have been found in SMA patients cause the disease remains elusive, yet, are likely to interfere with either SMN complex stability or snRNP assembly. The aim of this work was to establish an in vitro system to recapitulate the cytoplasmic assembly of snRNPs. This was enabled by the recombinant production of all PRMT5 and SMN complex components as well as Sm proteins in a combination of bacterial and insect cell expression systems. Co-expression of human PRMT5 and its direct interaction partner WD45 (WD-repeat domain 45) in Sf21 (Spodoptera frugiperda 21) insect cells resulted for the first time in soluble and biologically active enzyme. Recombinant PRMT5/WD45 formed complexes with Sm protein heterooligomers as well as pICln-Sm protein complexes but not with F/E/G alone. Also, the enzyme exhibited a type II methyltransferase activity catalyzing the mono- (MMA) and symmetrical dimethylation (sDMA) of Sm proteins B, D1 and D3. Two experimental setups were devised to quantitatively analyze the overall methylation of substrates as well as to identify the type and relative abundance of specific methylation types. Methylation of Sm proteins followed Michaelis-Menten kinetics. Complex reconstitutions and competition of the methylation reaction indicate that 6S is formed in a step-wise manner on the PRMT5 complex. The analysis of the methylation type could be applied to deduce a model of sequential MMA and sDMA formation. It was found that large Sm protein substrate concentrations favored monomethylation. Following a distributive mechanism this leads to the conclusion that PRMT5 most likely confers partial methylation of several different substrate proteins instead of processing a single substrate iteratively until it is completely dimethylated. Finally, the human SMN complex was reconstituted from recombinant sources and was shown to be active in snRNP formation. The introduction of a modified SMN protein carrying a mutation (E134K) present in spinal muscular atrophy (SMA) proved that mutated complexes can be generated in vitro and that these might be applied to elucidate the molecular etiology of this devastating disease.