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.

3,195 results for "AR" — page 95 of 160

Z_1_07 Verified Molecular Biology

Z_1_07 — Genetic Recombination and Crossing Over

Genetic recombination — the physical exchange of DNA segments between homologous chromosomes during meiosis — is a fundamental biological process that generates genetic diversity, ensures proper chromosome segregation, a

recombination crossing over meiosis chiasma homologous recombination linkage
Z_1_08 Verified Molecular Biology

Z_1_08 — Transposons and Mobile Genetic Elements

Transposable elements (TEs, transposons) — segments of DNA that can move or copy themselves to new genomic locations — are among the most abundant and influential components of eukaryotic genomes. Discovered by Barbara M

transposon mobile genetic element transposable element jumping gene Barbara McClintock retrotransposon
Z_1_02 Verified Molecular Biology

Z_1_02 — Human Chromosome 2 Fusion — Evidence of Primate Ancestry

Humans possess 46 chromosomes (23 pairs), while all other great apes — chimpanzees, gorillas, and orangutans — possess 48 chromosomes (24 pairs). This discrepancy was explained in the 1980s–1990s when molecular cytogenet

chromosome 2 chromosome fusion telomere-telomere ancestral chromosomes primate karyotype great ape
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_21 Verified Molecular Biology

Z_1_21 — Riboswitches and RNA Thermometers

Riboswitches are structured RNA elements typically found in the 5' untranslated regions (5' UTRs) of bacterial messenger RNAs that directly sense and bind specific small-molecule metabolites — changing their three-dimens

riboswitch RNA thermometer aptamer gene regulation metabolite sensing mRNA structure
Z_1_18 Verified Molecular Biology

Z_1_18 — Junk DNA & the ENCODE Controversy: Function, Noise, and the Human Genome

The term "junk DNA" — coined by Susumu Ohno (1972) to describe non-coding DNA sequences in eukaryotic genomes that appeared to have no functional role — ignited one of the most contentious debates in modern genomics: how

junk DNA ENCODE non-coding DNA transposable elements selfish DNA C-value paradox
Z_1_03 Verified Molecular Biology

Z_1_03 — Human Genome Project and Its Legacy

The Human Genome Project (HGP), launched in 1990 and completed in 2003, was the largest coordinated biological research effort in history — a $3 billion, 13-year international collaboration to sequence all ~3.2 billion b

Human Genome Project HGP genome sequencing Francis Collins Craig Venter Celera
Z_1_15 Verified Molecular Biology

Z_1_15 — Long Non-Coding RNA: The Dark Matter of the Transcriptome

Long non-coding RNAs (lncRNAs) — RNA transcripts longer than 200 nucleotides that do not encode proteins — represent one of the most surprising and rapidly expanding frontiers of molecular biology. The human genome encod

long non-coding RNA lncRNA XIST HOTAIR gene regulation chromatin
Z_1_00 Molecular Biology

Z_1_00 — Genome Structure Organization: Subfolder Summary

Z_1_14 Verified Molecular Biology

Z_1_14 — Chromatin Remodeling: Epigenetic Architecture of the Genome

Chromatin remodeling — the dynamic restructuring of the protein-DNA complex (chromatin) that packages eukaryotic genomes — is a central mechanism of gene regulation and a cornerstone of epigenetics. In eukaryotic cells,

chromatin histone nucleosome epigenetics histone modification acetylation
Z_4_08 Verified Molecular Biology

Z_4_08 — The Ribosome: The Molecular Machine of Translation

The ribosome — the massive molecular machine responsible for translating the genetic information encoded in messenger RNA (mRNA) into functional proteins — is arguably the most important macromolecular complex in all of

ribosome translation protein synthesis rRNA Ramakrishnan Steitz
Z_4_21 Verified Molecular Biology

Z_4_21 — Autophagy Mechanisms

Autophagy (from Greek, "self-eating") is a fundamental cellular process by which eukaryotic cells degrade and recycle their own components — damaged organelles, protein aggregates, intracellular pathogens, and surplus cy

autophagy autophagosomes lysosome Ohsumi ATG genes mTOR
Z_4_13 Verified Molecular Biology

Z_4_13 — Membrane Biology: Lipid Bilayers, Rafts, and Cellular Boundaries

Biological membranes — the lipid bilayer structures that define cells and compartmentalize their interiors — are fundamental to all life on Earth. Every cell is bounded by a plasma membrane that separates the interior (c

membrane lipid bilayer fluid mosaic model Singer-Nicolson lipid raft phospholipid
Z_4_00 Molecular Biology

Z_4_00 — RNA Protein Cell Biology: Subfolder Summary

Z_4_04 Verified Molecular Biology

Z_4_04 — RNA Biology: Types and Functions

RNA (ribonucleic acid) — once considered merely a passive intermediary between DNA and protein — is now recognized as the most functionally diverse class of biological macromolecules, performing roles in catalysis, gene

RNA biology RNA types messenger RNA mRNA transfer RNA tRNA
Z_4_03 Verified Molecular Biology

Z_4_03 — Forensic Genetics and DNA Identification

Forensic genetics uses DNA analysis to identify individuals, establish biological relationships, and solve criminal cases — a revolution that began when Sir Alec Jeffreys (1984, University of Leicester) discovered DNA fi

forensic genetics DNA fingerprinting STR profiling short tandem repeat CODIS combined DNA index system
Z_0_00 Molecular Biology

Z_0_00 — Molecular Biology & Genomics: Section Summary

K_3_09 Credible Consciousness

K_3_09 — Minimal Consciousness and the Threshold of Sentience

Where does consciousness begin? This question — the problem of the threshold of sentience — is one of the most challenging in consciousness studies because it requires identifying what KIND of physical system is minimall

minimal consciousness sentience threshold consciousness markers biological consciousness single cell behavior bacterial cognition
K_3_06 Verified Consciousness

K_3_06 — Disorders of Consciousness: Coma, Vegetative State, and Minimal Consciousness

Disorders of consciousness (DoC) — coma, vegetative state (now termed unresponsive wakefulness syndrome/UWS), and minimally conscious state (MCS) — represent some of the most challenging clinical and philosophical proble

disorders of consciousness coma vegetative state UWS unresponsive wakefulness syndrome minimally conscious state locked-in syndrome
K_3_05 Credible Consciousness

K_3_05 — Extended Mind and Cognitive Extension

The extended mind thesis (EMT), proposed by Andy Clark and David Chalmers in their landmark 1998 paper "The Extended Mind," argues that cognitive processes need not be confined within the skull — external objects, tools,

extended mind cognitive extension Clark and Chalmers parity principle Otto's notebook scaffolded cognition