Component
Propagating cardiac calcium waves
Independent biological entity. Read linked claims for experimental scope and context.
2 recorded relationships. Experimental role, claim status and evidence remain attached to each record.
How nutrients influence it
Every nutrient with a recorded effect on this component, credited to the nutrient that acted rather than the chapter that recorded it. Open a nutrient to see the findings and the conditions they were measured under.
Other things that act on it
Enzymes, hormones, genes, and other components with a recorded effect. These are not nutrients, so they do not count toward the arrows above. Each finding names the chapter that recorded it.
How nutrients reach it in more than one step
Chains of two or more recorded steps that end here, grouped by the nutrient they start from. Each step is a separate finding, so a chain is a route a mechanism could take, not proof that it does.
Tracing routes…
What it does
Every recorded relationship this component is part of, grouped by its role. Plain wording comes first; the technical statement follows.
What acts on it
Increasing sarcoplasmic-reticulum calcium content raises spontaneous release activity and permits some sparks to initiate propagating calcium waves.
Experimental context and source evidence
- compartment_description
- SR and cytosol
- experimental_model
- Quiescent rat cardiac myocytes; confocal calcium imaging with ryanodine and SR-loading manipulations
- limitations
- Experimental intracellular store loading, not dietary intake; normal schema category denotes a mechanistic experiment, not a healthy exposure.
- nutrient_topic
- Calcium research collection; topical membership is not evidence of a direct dietary effect. · Calcium
- organism
- Rattus norvegicus
- plain_language
- Heavily loaded stores can turn local calcium bursts into spreading waves.
- primary_references
- [ca-cheng1993] Calcium sparks: elementary events underlying excitation-contraction coupling in heart muscle (1993). https://pubmed.ncbi.nlm.nih.gov/8235594/ DOI: 10.1126/science.8235594
- research_relationship_category
- exposure_response
- tissue_or_cell_type
- Quiescent cardiac myocytes under experimental SR loading
Calcium: mechanism-first literature curation (2026-09-17) · lines 823–834
AI-assisted literature curation; primary study URLs and scope retained in the document and extraction. Not publisher full text. · supports · Quiescent rat cardiac myocytes; confocal calcium imaging with ryanodine and SR-loading manipulations · source_derived_draft · unverified_draft
### ca-sr-overload-propagating-waves Increasing sarcoplasmic-reticulum calcium content raises spontaneous release activity and permits some sparks to initiate propagating calcium waves. Condition category: normal nutrient_topic: Calcium research collection; topical membership is not evidence of a direct dietary effect. plain_language: Heavily loaded stores can turn local calcium bursts into spreading waves. organism: Rattus norvegicus tissue_or_cell_type: Quiescent cardiac myocytes under experimental SR loading experimental_model: Quiescent rat cardiac myocytes; confocal calcium imaging with ryanodine and SR-loading manipulations limitations: Experimental intracellular store loading, not dietary intake; normal schema category denotes a mechanistic experiment, not a healthy exposure. research_relationship_category: exposure_response compartment_description: SR and cytosol [ca-cheng1993] Calcium sparks: elementary events underlying excitation-contraction coupling in heart muscle (1993). https://pubmed.ncbi.nlm.nih.gov/8235594/ DOI: 10.1126/science.8235594
Complete structured claim and evidenceLow-K exposure increased calcium waves in ventricular and tubulated atrial cells, with a weaker response in untubulated atrial cells.
Experimental context and source evidence
- availability_state
- nutrient_deficiency Imported condition classification; unverified.
- cross_nutrient
- The calcium response to potassium depends on cellular transport organization.
- experimental_model
- Rat myocytes, 5.0 to 2.7 mM K, 3 minutes.
- limitations
- Architecture-dependent findings should not be generalized to all heart cells.
- nutrient_topic
- Potassium research collection; topical membership is not evidence of a direct dietary effect. · Potassium
- organism
- Rat
- plain_language
- Internal membrane architecture changed how low potassium disturbed calcium.
- primary_references
- [tazmini-2020-cardiac] Hypokalemia Promotes Arrhythmia by Distinct Mechanisms in Atrial and Ventricular Myocytes (2020). https://pmc.ncbi.nlm.nih.gov/articles/PMC7098435/ DOI: 10.1161/CIRCRESAHA.119.315641
- tissue_or_cell_type
- Atrial/ventricular myocardium
- trigger_kind
- nutrient_deficiency Imported condition classification; unverified.
Potassium: cross-nutrient mechanisms and deficiency (2026-09-17) · lines 669–679
AI-assisted literature curation; primary study URLs and scope retained in the document and extraction. Not publisher full text. · supports · Rat myocytes, 5.0 to 2.7 mM K, 3 minutes. · source_derived_draft · unverified_draft
### k-low-calcium-waves-tubules Low-K exposure increased calcium waves in ventricular and tubulated atrial cells, with a weaker response in untubulated atrial cells. Condition category: nutrient_deficiency nutrient_topic: Potassium research collection; topical membership is not evidence of a direct dietary effect. plain_language: Internal membrane architecture changed how low potassium disturbed calcium. organism: Rat tissue_or_cell_type: Atrial/ventricular myocardium experimental_model: Rat myocytes, 5.0 to 2.7 mM K, 3 minutes. limitations: Architecture-dependent findings should not be generalized to all heart cells. cross_nutrient: The calcium response to potassium depends on cellular transport organization. [tazmini-2020-cardiac] Hypokalemia Promotes Arrhythmia by Distinct Mechanisms in Atrial and Ventricular Myocytes (2020). https://pmc.ncbi.nlm.nih.gov/articles/PMC7098435/ DOI: 10.1161/CIRCRESAHA.119.315641
Complete structured claim and evidence
The events it takes part in
A mechanism often involves more than two components. These are the full events, with every participant and its role.
Situations it appears in
Low-supply and faulty-machinery situations recorded in the chapters where this component plays a part.
In the sources
Preserved passages that mention this component, quoted exactly. Open one to read it in context.
Open hypotheses
Proposed ideas that involve this component. They are labeled as hypotheses and do not change any recorded statement.
This is a research prototype built from draft material. It is not medical advice, and its statements still await verification against the original studies.