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BpForms and BcForms: Tools for concretely describing non-canonical polymers and complexes to facilitate comprehensive biochemical networks

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arxiv 1903.10042 v2 pith:NM73PGDP submitted 2019-03-24 q-bio.BM

classification q-bio.BM
keywords complexesmacromoleculesnetworksnon-canonicalbarrierbcformsbpformscaps
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Although non-canonical residues, caps, crosslinks, and nicks play an important role in the function of many DNA, RNA, proteins, and complexes, we do not fully understand how networks of non-canonical macromolecules generate behavior. One barrier is our limited formats, such as IUPAC, for abstractly describing macromolecules. To overcome this barrier, we developed BpForms and BcForms, a toolkit of ontologies, grammars, and software for abstracting the primary structure of polymers and complexes as combinations of residues, caps, crosslinks, and nicks. The toolkit can help quality control, exchange, and integrate information about the primary structure of macromolecules into fine-grained global networks of intracellular biochemistry.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Organizing genome engineering for the gigabase scale

    q-bio.GN 2019-09 conditional novelty 5.0 of 10

    Coordinating information and workflows across large teams, not DNA synthesis alone, is identified as the major under-recognized challenge for gigabase-scale genome engineering.

  2. Approximate Fiber Product: A Preliminary Algebraic-Geometric Perspective on Multimodal Embedding Alignment

    cs.LG 2024-11 reject novelty 4.0 of 10

    The paper introduces an approximate fiber product to model multimodal embedding alignment and proposes an orthogonal decomposition of the shared embedding space.

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