RESEARCH BASE

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

3,721 Documents 34 Sections 43,623 Citations 34,854 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.

9 results for "cyanobacteria"

R_1_09 Biology & Evolution

R_1_09 — The Great Oxidation Event: Oxygen, Cyanobacteria, and Earth's Atmospheric Transformation

The Great Oxidation Event (GOE), occurring approximately 2.4–2.1 billion years ago during the Paleoproterozoic, was the most dramatic chemical transformation in Earth's history — atmospheric oxygen rose from trace levels

Great Oxidation Event GOE cyanobacteria oxygenic photosynthesis atmospheric oxygen banded iron formations
ZF_2_07 Verified Oceanography

ZF_2_07 — Marine Microbiology and Plankton

Marine microorganisms — bacteria, archaea, protists, viruses, and microscopic algae — constitute the invisible foundation of ocean life, driving global biogeochemical cycles, producing roughly half of the world's oxygen,

marine microbiology plankton phytoplankton zooplankton cyanobacteria diatom
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
E_2_12 Verified Cataclysms & Chronology

E_2_12 — Great Oxygenation Event

The Great Oxygenation Event (GOE) — approximately 2.4–2.1 billion years ago — was one of the most transformative events in Earth's history: the first permanent rise of free molecular oxygen (O₂) in the atmosphere, from n

Great Oxygenation Event GOE oxygen crisis cyanobacteria photosynthesis Paleoproterozoic
ZB_2_14 Verified Ecology & Biology

ZB_2_14 — Photosynthesis Evolution and Diversity

Photosynthesis — the conversion of light energy into chemical energy — is arguably the most important biochemical process on Earth, responsible for virtually all atmospheric oxygen and the primary energy input for nearly

photosynthesis oxygenic photosynthesis anoxygenic chloroplast endosymbiosis Great Oxidation Event
ZB_5_28 Verified Ecology & Biology

ZB_5_28 — Photosynthesis: Light Harvesting, Carbon Fixation, and the Bioenergetic Foundation of Life

Photosynthesis — the conversion of light energy into chemical energy by living organisms — is the bioenergetic foundation of virtually all life on Earth, fixing approximately 120 billion tonnes of carbon annually and pro

photosynthesis chlorophyll Calvin cycle light reactions photosystem carbon fixation
ZB_3_16 Verified Ecology & Biology

ZB_3_16 — Lichen Biology: Symbiosis, Ecology, and Extremophile Survival

Lichens are stable symbiotic associations between a fungal partner (mycobiont, typically an ascomycete) and one or more photosynthetic partners (photobiont — green algae, usually Trebouxia, and/or cyanobacteria, usually

lichen lichenology symbiosis mutualism mycobiont photobiont
R_1_08 Biology & Evolution

R_1_08 — Photosynthesis — The Reaction That Made Complex Life Possible

Photosynthesis — the conversion of light energy into chemical energy — is arguably the most consequential biochemical innovation in Earth's history. Oxygenic photosynthesis, evolved by cyanobacteria approximately 2.4–3.0

photosynthesis Great Oxygenation Event cyanobacteria chloroplast endosymbiosis Lynn Margulis
R_1_16 Verified Biology & Evolution

R_1_16 — Endosymbiotic Theory: Modern Developments in Organelle Evolution

Endosymbiotic theory — the proposition that mitochondria and chloroplasts originated as free-living bacteria that were engulfed by ancestral eukaryotic cells and subsequently became obligate intracellular symbionts — is

endosymbiosis Lynn Margulis mitochondria chloroplast eukaryote origin serial endosymbiotic theory