K325 / 2027

Lesson 4 of 5 / Excretion in humans

Selective reabsorption

How does the nephron change filtrate into urine?

In this lesson: Explain selective reabsorption and use data to distinguish filtrate from urine.

About 5 min

The key ideaSelective reabsorption moves useful substances from the nephron fluid back into the blood; the remaining fluid becomes urine.

Selective reabsorption of glucose: the substance is initially in the filtrateNephron tubule fluidglucoseAcrosstubule wallRemainsin fluidBloodUrinePredict recoveryPredict what stays
A useful molecule can be present in initial filtrate. Predict whether it returns to blood, remains for excretion, or does both.

The proximal convoluted tubule, the first coiled section, recovers glucose and amino acids. This is a flow model, not a drawing of nephron shape. Arrow widths do not specify percentages. "Normally all" for glucose assumes usual blood concentrations and normal kidney function.

Explanation

As filtrate moves along the nephron tubule, substances cross the tubule wall into surrounding blood capillaries. This return to blood is called reabsorption. Selective means different substances and amounts are handled differently.

The first coiled part of the tubule after Bowman's capsule is the proximal convoluted tubule. This is where filtered glucose and amino acids are recovered. At usual blood concentrations in a healthy kidney, their reabsorption is normally complete. Glucose uptake by tubule cells depends on energy supplied by respiration. Needed ions are also reabsorbed.

Most filtered water returns to the blood by osmosis as water-potential differences arise. The amount finally excreted varies with the body's needs. Reabsorption of water is not simply water being actively pumped through a membrane.

Urea remains a major waste in urine, although some filtered urea can also be reabsorbed. Urine normally contains urea, water and dissolved ions, without appreciable glucose or large plasma proteins. The collecting ducts deliver the remaining fluid towards the renal pelvis.

When comparing samples, distinguish concentration from total amount. Removing much water can increase the concentration of urea in the fluid even if the amount of urea has not increased. A higher concentration does not prove that the nephron manufactured more urea.

Step by step
  1. 1

    Identify the stage

    Initial filtrate and final urine are different samples.

  2. 2

    Follow the substance

    Describe movement from tubule fluid through the wall back to blood.

  3. 3

    Check the quantity

    Use amount for a mass balance. Use concentration only with attention to fluid volume.

Worked example

A model water balance

In a simplified interval, 100 mL of water is filtered and 2 mL leaves as urine. Assuming no other addition, how much filtered water returned to blood?

One way to explain it

100 - 2 = 98 mL returned to blood by reabsorption. This is 98% of the filtered water in the example. The numbers illustrate a calculation, not a standard urine-production rate.

Why this answer works
  • Start with filtered amount, not its concentration.
  • Subtract the amount that leaves.
  • State the model assumption and units.
Is this true? "More concentrated urea in urine proves the kidney produced extra urea."

The liver produces most urea. Reabsorbing water reduces fluid volume and can concentrate the urea that remains.

Try a question

Glucose is present in initial filtrate but normally absent from final urine. Which process explains this?
You can return to this lesson any time.