{"id":"b33dac9e-724b-5fce-b75c-4fc595aebf22","stable_key":"5102beb6-9f61-500e-af10-9ac63649e0b7:k-deprivation-snat3","predicate":"deprivation-increases","statement":"Potassium deprivation increased renal SNAT3/SN1 expression in the rat time course.","claim_class":"mechanistic","status":"source_derived_draft","evidence_grade":"ungraded","direction":"positive","is_public":true,"mechanism_event_id":"8a1d0043-d704-546b-abf7-f15ecd6b6a9d","mechanism_event_label":"More glutamine transporter was detected in the kidney, supporting substrate delivery to the ammonia pathway.","subject":{"id":"87435e1d-e1cd-57da-984b-203b2f5f29a4","slug":"potassium","display_name":"Potassium","entity_type_key":"nutrient_element"},"object":{"id":"195b208c-cd8a-5961-8ea3-f68a0be0527a","slug":"slc38a3","display_name":"SNAT3 / SLC38A3","entity_type_key":"protein"},"evidence_count":1,"mechanism_event":{"id":"8a1d0043-d704-546b-abf7-f15ecd6b6a9d","stable_key":"5102beb6-9f61-500e-af10-9ac63649e0b7:k-deprivation-snat3-event","event_type":"biochemical_relationship","label":"More glutamine transporter was detected in the kidney, supporting substrate delivery to the ammonia pathway.","description":"Potassium deprivation increased renal SNAT3/SN1 expression in the rat time course.","status":"provisional","compartment":null,"participants":[{"entity":{"id":"87435e1d-e1cd-57da-984b-203b2f5f29a4","slug":"potassium","display_name":"Potassium","entity_type_key":"nutrient_element"},"role":"upstream","stoichiometry":null,"state_label":"","sequence_order":0,"notes":""},{"entity":{"id":"195b208c-cd8a-5961-8ea3-f68a0be0527a","slug":"slc38a3","display_name":"SNAT3 / SLC38A3","entity_type_key":"protein"},"role":"downstream","stoichiometry":null,"state_label":"","sequence_order":1,"notes":""},{"entity":{"id":"8637bb39-2c30-5168-baaf-3e613d831db0","slug":"glutamine","display_name":"L-Glutamine","entity_type_key":"small_molecule"},"role":"transported-substrate","stoichiometry":null,"state_label":"","sequence_order":2,"notes":""},{"entity":{"id":"38de8704-84db-5770-ac1d-242cd787e798","slug":"sodium-ion","display_name":"Sodium ion","entity_type_key":"ion"},"role":"cotransported-ion","stoichiometry":null,"state_label":"","sequence_order":3,"notes":""}]},"contexts":[{"dimension":"availability_state","value_text":"nutrient_deficiency","comparator":null,"unit":null,"notes":"Imported condition classification; unverified.","entity":null},{"dimension":"cross_nutrient","value_text":"Potassium deprivation changes glutamine nitrogen metabolism and sodium-coupled glutamine transport; these experiments did not manipulate dietary protein adequacy.","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"endpoint","value_text":"Potassium deprivation increased renal SNAT3/SN1 expression in the rat time course.","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"experimental-exposure","value_text":"Rats on control or potassium-deficient diets for up to 6 days; NH4Cl co-loading and NRK52E/LLC-PK1 cell experiments.","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"experimental_model","value_text":"Rats on control or potassium-deficient diets for up to 6 days; NH4Cl co-loading and NRK52E/LLC-PK1 cell experiments.","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"limitations","value_text":"Dietary deprivation precedes detectable hypokalemia here; protein expression does not independently establish transport flux or quantify net bicarbonate generation.","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"nutrient_topic","value_text":"Potassium research collection; topical membership is not evidence of a direct dietary effect.","comparator":null,"unit":null,"notes":"","entity":{"slug":"potassium","display_name":"Potassium","entity_type_key":"nutrient_element"}},{"dimension":"organism","value_text":"Rattus norvegicus","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"plain_language","value_text":"More glutamine transporter was detected in the kidney, supporting substrate delivery to the ammonia pathway.","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"primary_references","value_text":"[hossain-2011-k-ammoniagenesis] Cellular and molecular basis of increased ammoniagenesis in potassium deprivation (2011). https://journals.physiology.org/doi/full/10.1152/ajprenal.00010.2011 DOI: 10.1152/ajprenal.00010.2011","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"tissue_or_cell_type","value_text":"renal proximal tubule and whole-kidney excretion","comparator":null,"unit":null,"notes":"","entity":null},{"dimension":"trigger_kind","value_text":"nutrient_deficiency","comparator":null,"unit":null,"notes":"Imported condition classification; unverified.","entity":null}],"evidence":[{"id":"1d3cc6ae-de62-5a86-8ab0-0a56b5b4d22e","evidence_kind":"source_excerpt","locator":"Lines 972-984","start_line":972,"end_line":984,"excerpt":"### k-deprivation-snat3\nPotassium deprivation increased renal SNAT3/SN1 expression in the rat time course.\nCondition category: nutrient_deficiency\nnutrient_topic: Potassium research collection; topical membership is not evidence of a direct dietary effect.\nplain_language: More glutamine transporter was detected in the kidney, supporting substrate delivery to the ammonia pathway.\norganism: Rattus norvegicus\ntissue_or_cell_type: renal proximal tubule and whole-kidney excretion\nexperimental_model: Rats on control or potassium-deficient diets for up to 6 days; NH4Cl co-loading and NRK52E/LLC-PK1 cell experiments.\nlimitations: Dietary deprivation precedes detectable hypokalemia here; protein expression does not independently establish transport flux or quantify net bicarbonate generation.\ncross_nutrient: Potassium deprivation changes glutamine nitrogen metabolism and sodium-coupled glutamine transport; these experiments did not manipulate dietary protein adequacy.\nexperimental-exposure: Rats on control or potassium-deficient diets for up to 6 days; NH4Cl co-loading and NRK52E/LLC-PK1 cell experiments.\nendpoint: Potassium deprivation increased renal SNAT3/SN1 expression in the rat time course.\n[hossain-2011-k-ammoniagenesis] Cellular and molecular basis of increased ammoniagenesis in potassium deprivation (2011). https://journals.physiology.org/doi/full/10.1152/ajprenal.00010.2011 DOI: 10.1152/ajprenal.00010.2011","model_system":"Rats on control or potassium-deficient diets for up to 6 days; NH4Cl co-loading and NRK52E/LLC-PK1 cell experiments.","directness":"author_interpretation","verification_status":"source_derived_draft","notes":"Exact curation-document quotation, not publisher quotation. Study references: [hossain-2011-k-ammoniagenesis] Cellular and molecular basis of increased ammoniagenesis in potassium deprivation (2011). https://journals.physiology.org/doi/full/10.1152/ajprenal.00010.2011 DOI: 10.1152/ajprenal.00010.2011","relationship":"supports","weight":1.0,"link_notes":"","source":{"id":"241226ee-6b7d-5cc7-9781-e6beb8ee1982","stable_key":"import-5102beb6-9f61-500e-af10-9ac63649e0b7","title":"Potassium: cross-nutrient mechanisms and deficiency (2026-09-17)","document_type":"imported_text","citation_label":"AI-assisted literature curation; primary study URLs and scope retained in the document and extraction. Not publisher full text.","file_path":"","sha256":"a8f89f8d84b48c0f93048dfc45f7f57a67dd9a7249968a096a14aeb03d8b7a52","revision_id":"de4ec6f4-58a1-537b-8169-97b783898df1","review_status":"unverified_draft","notes":""}}],"relations":[],"conflicts":[],"corrections":[],"research":null}