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.

3,110 results for "Tao Te Ching" — page 99 of 156

Z_3_03 Verified Molecular Biology

Z_3_03 — Ancient Pathogen Genomics — Plague, TB, Smallpox DNA

Ancient pathogen genomics — the recovery and sequencing of disease-causing organism DNA from archaeological remains — has revolutionized understanding of human disease history. Beginning with the landmark reconstruction

ancient pathogen paleomicrobiology Yersinia pestis plague Black Death Justinianic plague
Z_3_12 Verified Molecular Biology

Z_3_12 — Genetics of Alcohol Metabolism

The genetics of alcohol metabolism provides one of the clearest examples of how specific genetic variants influence behavior and disease risk at a population scale. Ethanol is metabolized primarily through a two-step oxi

alcohol metabolism ADH1B ALDH2 acetaldehyde Asian flush alcohol dehydrogenase
Z_3_04 Verified Molecular Biology

Z_3_04 — Comparative Genomics and Cross-Species Analysis

Comparative genomics — the systematic comparison of genome sequences across species — has become the primary tool for understanding genome evolution, identifying functionally important sequences, and reconstructing the T

comparative genomics genome sequencing synteny ortholog paralog conserved element
Z_3_06 Verified Molecular Biology

Z_3_06 — Genetics of Circadian Rhythms

Circadian rhythms — endogenous ~24-hour oscillations in physiology and behavior — are generated by an intracellular transcription-translation feedback loop (TTFL) encoded by a set of core clock genes conserved across ani

circadian rhythm clock genes CLOCK BMAL1 PER CRY
Z_3_02 Verified Molecular Biology

Z_3_02 — Epigenetic Inheritance & Transgenerational Effects

Epigenetic inheritance refers to the transmission of phenotypic information across generations through mechanisms other than changes in DNA sequence. The three primary molecular mechanisms — DNA methylation, histone modi

epigenetics transgenerational inheritance DNA methylation histone modification Dutch Hunger Winter Överkalix
Z_3_09 Verified Molecular Biology

Z_3_09 — Conservation Genetics and Endangered Species

Conservation genetics applies population genetics, genomics, and molecular biology to the preservation of biological diversity. At its core is the recognition that genetic diversity — the raw material for adaptation to c

conservation genetics endangered species genetic diversity inbreeding depression effective population size genetic drift
Z_3_10 Credible Molecular Biology

Z_3_10 — Genetics of Athletic Performance

Athletic performance is a highly polygenic trait with substantial heritability — twin studies estimate heritability of VO2max (maximal oxygen uptake) at ~50% (Bouchard et al., 1999, HERITAGE Family Study), muscle fiber c

sports genetics ACTN3 alpha-actinin-3 ACE angiotensin converting enzyme VO2max heritability
Z_3_11 Verified Molecular Biology

Z_3_11 — Genetic Mosaicism and Chimerism

A fundamental assumption of genetics — that every cell in an individual's body carries the same genome — is wrong. Genetic mosaicism (the presence of two or more genetically distinct cell populations within an individual

genetic mosaicism somatic mosaicism chimerism tetragametic chimera microchimerism fetal microchimerism
Z_3_01 Verified Molecular Biology

Z_3_01 — Genetics of Brain Development — ASPM, Microcephalin, HAR1

The human brain is approximately three times larger than expected for a primate of our body size, with a vastly expanded cerebral cortex containing ~86 billion neurons. Identifying the genetic basis for this extraordinar

ASPM microcephalin MCPH1 HAR1 human accelerated regions brain evolution
Z_2_15 Verified Molecular Biology

Z_2_15 — Future of Genomics and Personalized Medicine

Genomics is undergoing a transition from research tool to clinical infrastructure. The cost of whole-genome sequencing (WGS) has plummeted from $2.7 billion (Human Genome Project, 1990–2003) to ~$200 per genome (Illumina

future genomics personalized medicine precision medicine polygenic risk scores whole genome sequencing newborn screening
Z_2_13 Verified Molecular Biology

Z_2_13 — Pharmacogenomics and Personalized Medicine

Pharmacogenomics — the study of how genetic variation influences drug response — is among the most clinically actionable applications of human genetics. Adverse drug reactions (ADRs) are the 4th–6th leading cause of deat

pharmacogenomics pharmacogenetics personalized medicine precision medicine CYP2D6 CYP2C_5_04
Z_2_19 Verified Molecular Biology

Z_2_19 — Senolytics & Geroscience: Targeting Cellular Senescence in Aging

Cellular senescence — the irreversible arrest of cell division first described by Leonard Hayflick and Paul Moorhead (1961, Experimental Cell Research) — has emerged as a central mechanism of aging and age-related diseas

senolytics cellular-senescence geroscience aging-biology senescent-cells sasp
Z_2_03 Verified Molecular Biology

Z_2_03 — Pharmacogenomics & Ethnobotanical Genetics

Pharmacogenomics — the study of how genetic variation affects drug response — has revealed that enzymes governing drug metabolism, particularly the cytochrome P450 (CYP) superfamily, show extraordinary population-specifi

pharmacogenomics ethnobotany CYP2D6 cytochrome P450 drug metabolism traditional medicine
Z_2_09 Verified Molecular Biology

Z_2_09 — Mitochondrial Genetics and Diseases

Human mitochondrial DNA (mtDNA) is a 16,569-bp circular genome encoding 37 genes: 13 proteins (all subunits of the oxidative phosphorylation/OXPHOS complexes I, III, IV, and V), 22 transfer RNAs, and 2 ribosomal RNAs. Un

mitochondrial genetics mtDNA mitochondrial DNA mitochondrial disease oxidative phosphorylation OXPHOS
Z_2_11 Verified Molecular Biology

Z_2_11 — Genetics of Immunity and MHC Diversity

The major histocompatibility complex (MHC) — known as the human leukocyte antigen (HLA) system in humans — is the most polymorphic gene region in the human genome, encoding cell-surface glycoproteins essential for adapti

major histocompatibility complex MHC HLA human leukocyte antigen adaptive immunity antigen presentation
Z_2_07 Verified Molecular Biology

Z_2_07 — Genetics of Disease Resistance

Infectious disease has been the most powerful selective force shaping the human genome, leaving signatures across thousands of loci. The best-understood example is sickle cell disease (HbS, Glu6Val in HBB): heterozygous

disease resistance natural selection pathogen-driven selection sickle cell malaria resistance HbS
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_13 Verified Molecular Biology

Z_1_13 — DNA Repair Mechanisms and Genome Stability

Every human cell sustains an estimated 10,000–100,000 DNA lesions per day from endogenous sources alone — oxidative metabolism, spontaneous hydrolysis, replication errors, and reactive metabolites — while environmental m

DNA repair base excision repair nucleotide excision repair mismatch repair double-strand break homologous recombination
Z_1_16 Verified Molecular Biology

Z_1_16 — Transposable Elements: Jumping Genes and Genome Evolution

Transposable elements (TEs) — sequences of DNA capable of moving ("jumping") from one genomic location to another — constitute approximately 45% of the human genome and up to 85% of the maize genome, making them the sing

transposable elements jumping genes Barbara McClintock retrotransposons DNA transposons Alu elements
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