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1.
PLoS Genet ; 18(8): e1010348, 2022 08.
Article in English | MEDLINE | ID: mdl-35960773

ABSTRACT

Epithelial cells secrete apical extracellular matrices to form protruding structures such as denticles, ridges, scales, or teeth. The mechanisms that shape these structures remain poorly understood. Here, we show how the actin cytoskeleton and a provisional matrix work together to sculpt acellular longitudinal alae ridges in the cuticle of adult C. elegans. Transient assembly of longitudinal actomyosin filaments in the underlying lateral epidermis accompanies deposition of the provisional matrix at the earliest stages of alae formation. Actin is required to pattern the provisional matrix into longitudinal bands that are initially offset from the pattern of longitudinal actin filaments. These bands appear ultrastructurally as alternating regions of adhesion and separation within laminated provisional matrix layers. The provisional matrix is required to establish these demarcated zones of adhesion and separation, which ultimately give rise to alae ridges and their intervening valleys, respectively. Provisional matrix proteins shape the alae ridges and valleys but are not present within the final structure. We propose a morphogenetic mechanism wherein cortical actin patterns are relayed to the laminated provisional matrix to set up distinct zones of matrix layer separation and accretion that shape a permanent and acellular matrix structure.


Subject(s)
Actins , Caenorhabditis elegans , Actins/metabolism , Animals , Caenorhabditis elegans/metabolism , Cytoskeleton/genetics , Extracellular Matrix/metabolism , Morphogenesis
2.
RNA ; 28(4): 583-595, 2022 04.
Article in English | MEDLINE | ID: mdl-35046126

ABSTRACT

A critical step of pre-mRNA splicing is the recruitment of U2 snRNP to the branch point sequence of an intron. U2 snRNP conformation changes extensively during branch helix formation, and several RNA-dependent ATPases are implicated in the process. However, the molecular mechanisms involved remain to be fully dissected. We took advantage of the differential nucleotide triphosphates requirements for DExD/H-box enzymes to probe their contributions to in vitro spliceosome assembly. Both ATP and GTP hydrolysis support the formation of A-complex, indicating the activity of a DEAH-enzyme because DEAD-enzymes are selective for ATP. We immunodepleted DHX15 to assess its involvement, and although splicing efficiency decreases with reduced DHX15, A-complex accumulation incongruently increases. DHX15 depletion also results in the persistence of the atypical ATP-independent interaction between U2 snRNP and a minimal substrate that is otherwise destabilized in the presence of either ATP or GTP. These results lead us to hypothesize that DHX15 plays a quality control function in U2 snRNP's engagement with an intron. In efforts to identify the RNA target of DHX15, we determined that an extended polypyrimidine tract is not necessary for disruption of the atypical interaction between U2 snRNP and the minimal substrate. We also examined U2 snRNA by RNase H digestion and identified nucleotides in the branch binding region that become accessible with both ATP and GTP hydrolysis, again implicating a DEAH-enzyme. Together, our results demonstrate that multiple ATP-dependent rearrangements are likely involved in U2 snRNP addition to the spliceosome and that DHX15 may have an expanded role in maintaining splicing fidelity.


Subject(s)
Ribonucleoprotein, U2 Small Nuclear , Spliceosomes , Introns/genetics , RNA Precursors/metabolism , RNA Splicing , RNA, Small Nuclear/genetics , Ribonuclease H/metabolism , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/metabolism
3.
ACS Chem Biol ; 16(3): 520-528, 2021 03 19.
Article in English | MEDLINE | ID: mdl-33617218

ABSTRACT

Small molecules that target the spliceosome SF3B complex are potent inhibitors of cancer cell growth. The compounds affect an early stage of spliceosome assembly when U2 snRNP first engages the branch point sequence of an intron. Employing an inactive herboxidiene analog (iHB) as a competitor, we investigated factors that influence inhibitor interactions with SF3B to interfere with pre-mRNA splicing in vitro. Order-of-addition experiments show that inhibitor interactions are long lasting and affected by both temperature and the presence of ATP. Our data are also consistent with the model that not all SF3B conformations observed in structural studies are conducive to productive inhibitor interactions. Notably, SF3B inhibitors do not impact an ATP-dependent rearrangement in U2 snRNP that exposes the branch binding sequence for base pairing. We also report extended structure-activity relationship analysis of the splicing inhibitor herboxidiene. We identified features of the tetrahydropyran ring that mediate its interactions with SF3B and its ability to interfere with splicing. In the context of recent structures of SF3B bound to inhibitor, our results lead us to extend the model for early spliceosome assembly and inhibitor mechanism. We postulate that interactions between a carboxylic acid substituent of herboxidiene and positively charged SF3B1 side chains in the inhibitor binding channel are needed to maintain inhibitor occupancy while counteracting the SF3B transition to a closed state that is required for stable U2 snRNP interactions with the intron.


Subject(s)
Fatty Alcohols/chemistry , Phosphoproteins/agonists , Phosphoproteins/antagonists & inhibitors , Pyrans/chemistry , RNA Splicing Factors/agonists , RNA Splicing Factors/antagonists & inhibitors , RNA Splicing/drug effects , Ribonucleoprotein, U2 Small Nuclear/chemistry , Spliceosomes/chemistry , Adenosine Triphosphate/chemistry , Base Sequence , Binding Sites , Fatty Alcohols/metabolism , HeLa Cells , Humans , Models, Molecular , Protein Binding , Protein Conformation , Pyrans/metabolism , RNA, Messenger/chemistry , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/metabolism , Structure-Activity Relationship , Temperature
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