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.

1,915 results for "EM effects" — page 47 of 96

Z_5_15 Verified Molecular Biology

Z_5_15 — Synthetic Genomes: Designing and Building Life from Scratch

Synthetic genomics — the design, construction, and transplantation of complete genomes assembled from chemically synthesized oligonucleotides — represents one of the most ambitious enterprises in modern biology, with the

synthetic genome Craig Venter Mycoplasma mycoides JCVI-syn3.0 minimal genome synthetic biology
Z_3_07 Verified Molecular Biology

Z_3_07 — Gene Drive Technology

Gene drives are genetic systems that bias their own inheritance to spread through a population at rates exceeding normal Mendelian expectations (~50% → ~99% transmission). Natural selfish genetic elements (transposons, m

gene drive CRISPR gene drive selfish genetic element meiotic drive super-Mendelian inheritance Anopheles
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_08 Verified Molecular Biology

Z_3_08 — Genetics of Taste and Smell

Taste and smell perception are profoundly shaped by genetics, with variation in chemosensory receptor genes producing dramatically different sensory worlds between individuals. The olfactory receptor (OR) gene family — d

taste genetics olfactory genetics olfactory receptor OR genes gustatory receptor TAS2R
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_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_05 Verified Molecular Biology

Z_3_05 — Viral Integration and Endogenous Retroviruses

Approximately 8% of the human genome consists of human endogenous retroviruses (HERVs) — the remnants of ancient retroviral infections that integrated into germline cells and were subsequently inherited vertically like a

endogenous retrovirus ERV HERV viral integration retrovirus reverse transcriptase
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_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_22 Verified Molecular Biology

Z_2_22 — Telomere Molecular Biology

Telomeres are the protective nucleoprotein structures capping the ends of linear eukaryotic chromosomes, consisting of tandem repetitive DNA sequences (5'-TTAGGG-3' in vertebrates, repeating ~1,000–2,000 times for a tota

telomere telomerase chromosome end TTAGGG Hayflick limit replicative senescence
Z_2_02 Verified Molecular Biology

Z_2_02 — Telomere Biology & Genetics of Aging

Telomeres — repetitive DNA sequences (TTAGGG)ₙ capping the ends of linear chromosomes — serve as protective buffers against chromosome degradation, end-to-end fusion, and the progressive DNA loss inherent in the end-repl

telomere telomerase aging senescence Hayflick limit Elizabeth Blackburn
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_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_06 Verified Molecular Biology

Z_1_06 — Sex Determination Genetics

Sex determination — the biological process that establishes whether an organism develops as male, female, or an alternative reproductive type — employs remarkably diverse mechanisms across the tree of life. In placental

sex determination sex chromosomes X chromosome Y chromosome SRY gene X-inactivation
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_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_10 Verified Molecular Biology

Z_1_10 — Chromosome Evolution and Karyotype

Karyotype — the number, size, and morphology of chromosomes in a cell — varies enormously across species, from n=1 in the ant Myrmecia pilosula to n=630 in the fern Ophioglossum reticulatum. Humans have 2n=46 (23 pairs),

chromosome evolution karyotype chromosome number Robertsonian translocation chromosome fusion human chromosome 2
Z_4_05 Verified Molecular Biology

Z_4_05 — Synthetic Biology and Minimal Genomes

Synthetic biology aims to design, construct, and engineer biological systems and organisms with novel functions not found in nature — or to redesign existing biological systems for useful purposes. The field's landmark a

synthetic biology minimal genome JCVI-syn3.0 Mycoplasma mycoides synthetic cell Venter
Z_4_06 Verified Molecular Biology

Z_4_06 — Psychedelic Neurochemistry: 5-HT2A, Tryptamines, and Molecular Mechanisms

Psychedelic neurochemistry — the molecular-level study of how psychedelic compounds alter brain function to produce their characteristic effects (visual hallucinations, synesthesia, ego dissolution, mystical-type experie

psychedelics 5-HT2A receptor serotonin tryptamines psilocybin LSD