RESEARCH BASE

Search 3,721 documents across 34 fields — every claim tier-rated by evidence

3,721 Documents 34 Sections 43,625 Citations 34,852 Keywords Indexed 4 Evidence Tiers

3,633 are the core, quality-scored corpus (34 lettered sections — see How We Work); the remaining 88 are cross-corpus synthesis documents (68 InterDocs, 12 Connections, 8 Theories) also indexed here.

1,463 results for "Bi Sheng" — page 67 of 74

ZF_5_14 Verified Oceanography

ZF_5_14 — Marine Invertebrate Venoms: Cone Snails, Box Jellyfish, and Blue-Ringed Octopus

The oceans harbor an extraordinary diversity of venomous organisms — from the microscopic nematocysts (stinging cells) of cnidarians to the sophisticated venom injection systems of cone snails, blue-ringed octopuses, and

marine venom cone snail Conus conotoxin box jellyfish Chironex fleckeri
ZF_4_00 Oceanography

ZF_4_00 — Ocean Chemistry Climate: Subfolder Summary

ZF_4_14 Verified Oceanography

ZF_4_14 — Harmful Algal Blooms: Red Tides, Toxins, and Eutrophication

Harmful algal blooms (HABs) — rapid proliferations of microscopic algae (phytoplankton) or cyanobacteria that produce toxins, deplete oxygen, or otherwise damage marine ecosystems, fisheries, and human health — are incre

harmful algal bloom HAB red tide algal toxin eutrophication paralytic shellfish poisoning
ZF_0_00 Oceanography

ZF_0_00 — Oceanography & Marine Science: Section Summary

Z_5_00 Molecular Biology

Z_5_00 — Modern Genomics Technologies: Subfolder Summary

Z_5_10 Verified Molecular Biology

Z_5_10 — Genome Editing Beyond CRISPR: TALENs, Base Editors, Prime Editors, and Next-Generation Tools

While CRISPR-Cas9 (covered in Z_1_02) dominates the genome editing landscape, it is neither the first nor the only precision genome editing technology. The field began with zinc finger nucleases (ZFNs) in the early 2000s

genome editing TALENs zinc finger nucleases ZFN base editing prime editing
Z_5_12 Verified Molecular Biology

Z_5_12 — Splicing: RNA Processing and Alternative Splicing

RNA splicing — the process by which intervening sequences (introns) are removed from precursor messenger RNA (pre-mRNA) and the remaining sequences (exons) are joined together to form the mature mRNA — is a fundamental s

RNA splicing spliceosome alternative splicing exon intron pre-mRNA
Z_5_13 Verified Molecular Biology

Z_5_13 — Molecular Clocks: Timing Evolution at the Sequence Level

Molecular clocks — the observation that DNA and protein sequences accumulate substitutions (mutations that become fixed in a lineage) at approximately regular rates over long periods of evolutionary time, enabling the es

molecular clock neutral theory substitution rate Zuckerkandl Pauling calibration
Z_5_05 Verified Molecular Biology

Z_5_05 — Proteomics: The Global Study of Proteins

Proteomics — the large-scale study of the complete set of proteins (proteome) expressed by a cell, tissue, or organism at a given time — bridges the gap between the genome (static DNA sequence) and the phenotype (observa

proteomics mass spectrometry protein identification two-dimensional gel electrophoresis tandem MS post-translational modification
Z_5_17 Verified Molecular Biology

Z_5_17 — CRISPR-Cas9 Mechanism and Applications

CRISPR-Cas9 (Clustered Regularly Interspaced Short Palindromic Repeats and CRISPR-associated protein 9) is a revolutionary genome-editing technology adapted from the natural adaptive immune system of bacteria and archaea

CRISPR Cas9 gene editing guide RNA PAM double-strand break
Z_5_14 Verified Molecular Biology

Z_5_14 — Spatial Transcriptomics: Gene Expression in Tissue Context

Spatial transcriptomics — technologies that measure gene expression while preserving the spatial location of transcripts within intact tissue sections — resolves a fundamental limitation of conventional single-cell RNA s

spatial transcriptomics Visium MERFISH seqFISH tissue architecture gene expression
Z_5_01 Verified Molecular Biology

Z_5_01 — CRISPR Applications and Genetic Engineering

CRISPR-Cas9 (Clustered Regularly Interspaced Short Palindromic Repeats) is a revolutionary gene-editing technology adapted from a bacterial immune defense system, enabling precise, programmable modification of DNA in vir

CRISPR Cas9 gene editing genetic engineering CRISPR-Cas9 guide RNA
Z_5_08 Verified Molecular Biology

Z_5_08 — Mitochondrial DNA: Maternal Inheritance, Ancient Lineages, and Disease

Mitochondrial DNA (mtDNA) — the small, circular genome (~16,569 base pairs in humans) contained within mitochondria — encodes 37 genes essential for oxidative phosphorylation (13 protein-coding genes, 22 transfer RNAs, 2

mitochondrial DNA mtDNA maternal inheritance mitochondrial Eve heteroplasmy oxidative phosphorylation
Z_3_00 Molecular Biology

Z_3_00 — Evolutionary Population Genetics: Subfolder Summary

Z_3_16 Verified Molecular Biology

Z_3_16 — Genomic Conflict and Selfish Genetic Elements

Selfish genetic elements (SGEs) — sequences of DNA that promote their own transmission at the expense of the host organism or other genes in the genome — reveal that the genome is not a cooperating community of genes but

selfish-genetic-elements genomic-conflict transposable-elements meiotic-drive gene-drive intragenomic-conflict
Z_2_00 Molecular Biology

Z_2_00 — Medical Genetics Health: Subfolder Summary

Z_2_05 Verified Molecular Biology

Z_2_05 — Gene Therapy: History and Progress

Gene therapy — the introduction, alteration, or replacement of genetic material within a patient's cells to treat or cure disease — has evolved from a speculative concept to an approved clinical reality over five decades

gene therapy gene replacement viral vector adeno-associated virus AAV lentivirus
Z_1_04 Verified Molecular Biology

Z_1_04 — Gene Expression and Regulation

Gene expression regulation — the molecular mechanisms controlling when, where, and how much each gene is active — is the central process that enables a single genome to produce ~200 distinct cell types, orchestrate embry

gene expression regulation transcription factors promoter enhancer epigenetics
Z_1_01 Verified Molecular Biology

Z_1_01 — ENCODE Project, Non-Coding DNA & Epigenetics

The human genome is ~3.2 billion base pairs long, but only ~1.5% encodes proteins. The remaining ~98.5% was once dismissed as "junk DNA." The ENCODE Project (2003–present) revealed that at least 80% of the genome has bio

ENCODE non-coding DNA junk DNA epigenetics regulatory elements endogenous retrovirus
Z_1_19 Verified Molecular Biology

Z_1_19 — Non-Coding RNA and Gene Regulation

Non-coding RNAs (ncRNAs) — RNA molecules that are transcribed from the genome but do not encode proteins — have emerged as central regulators of gene expression, challenging the classical "one gene–one protein" paradigm

non-coding-rna microrna lncrna gene-regulation rna-interference sirna