Canonical Question
Glomerulus & Tubule
Master answer
Non-volatile acid
” An acid produced from sources other than carbon dioxide, which cannot be excreted in the lungs. “
- e.g. lactate, sulphate, phosphate and ketone bodies
- 70-100mmol non-volatile acid produced per day
- 4000-5000mmol HCO3– filtered by glomerulus per day
- Renal acid-base is largely determined by handling of bicarbonate ions
- 80% of filtered bicarbonate resorbed in proximal tubule
- 20% resorbed in distal tubule and collecting duct
- Urinary Buffers (Dibasic Phosphate and ammonia) play a role
Bicarbonate Resorption
Proximal tubule
In the tubular cell:
\[H_2O + CO_2 \to H_2CO_3 \to H^+ + HCO_3^- \]
\[(catalysed \; by \; carbonic \; anhydrase)\]
- H+ leaves the tubular cell through the apical membrane via
- H+/Na+ antiporter (secondary active transport via Na+/K+ ATPase on basolateral membrane)
- The HCO3– re-enters the circulation via the Na/HCO3– symporter
- H+ combines with HCO3– in tubule to form H2CO3
- H2CO3 switches back to CO2 and H2O, CO2 is resorbed to turn back into the tubular cell to generate more HCO3 for resorption
More bicarbonate resorbed when:
- Higher filtered HCO3–
- Higher PaCO2
- Lower luminal flow rate
- Angiotensin 2

Distal convoluted tubule and collecting duct
- Similar mechanism with regards to resorption of HCO3– via secretion of H+
- Difference is that H+ is transported across the apical membrane via an H+ ATPase (active transport)
Role of Buffers
- The maximum urinary pH is 4.5
- To eliminate more protons, they must be buffered in the tubular fluid
- H+ is bound preferentially to buffers only in the presence of low tubular HCO3–
- Buffering, and so elimination of H+ without its conjugate HCO3–, requires resorption of HCO3– in the proximal convoluted tubule
Phosphate (HPO42-):
\[HPO_4^{2-} + H^+ \rightleftharpoons H_2PO^{4-}\]
- Becomes concentrated in tubules
- pKa = 6.8, so operates effectively as a buffer at tubular pH
Ammonia
\[Glutamine \to 2 NH_4^+ 2 HCO_3^-\]
\[NH_4^+ \rightleftharpoons NH_3 + H^+ \]
- Glutamine broken down in tubular epithelia cells to two NH4+ and two HCO3–
- Comes from hepatic amino acid metabolism
- The new HCO3– is transported back to the circulation via the Na/HCO3– symporter to re-enter the circulation
- NH4+ becomes ion trapped in the tubular fluid
- Proximal tubular fluid is not acidic enough to keep NH4+ in the tubule
- It is resorbed in the ascending limb, moves through the medulla to re-enter the collecting duct
- Here urine has a low pH, and so NH4+ can be eliminated with its proton attached
Mooney 2016
Exam appearances
| Exam | Exact wording | Relationship | Success |
|---|---|---|---|
| 2014B Q12 | Describe the role of the kidneys in the excretion of non-volatile acid. | historical_member | — |
| 2020B Q19 | Explain how the kidney handles an acid load. | historical_member | — |
| 2024B Q14 | Explain how the kidney handles an acid load. | historical_member | — |