---
title: "Digestion and Absorption"
book: "University Biology — Year 1"
subject: biology
language: en
chapter: 22
exercises: 12
source: https://one-course.com/books/biology/3/en/chapter/22-digestion-and-absorption
---

# Chapter 22 — Digestion and Absorption

A cow eats ten kilograms of grass a day and lives on acetic acid; a horse eats the same grass and lives, in part, on glucose; a rabbit eats its own night droppings and would sicken without them. None of them can digest [cellulose](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide), and all of them do, by keeping bacteria that can. A human, who cannot, digests a meal of bread, meat and butter to sugars, [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) and [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) within a few hours and absorbs nine litres of water a day through a wall one [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) thick. This chapter describes the [digestive tract](#prop-b1-digestion-absorption-tract) of a mammal, the [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) and secretions that take food apart, the [cells](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) that take the pieces in, the signals that time it all, and the partnerships with microbes by which herbivores live on what no mammalian [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) can touch.

## 22.1 Heterotrophic nutrition

**Definition 22.1 (Nutrition, digestion, absorption).**

A heterotroph must take from its food energy and carbon, the [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) and [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) it cannot make ([Chapter 16](https://one-course.com/books/biology/3/en/chapter/16-biosyntheses-and-the-integrated-cell#ch-b1-biosyntheses-integration)), vitamins, minerals and water. Food arrives as macromolecules — [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide), [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide), [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) — that cannot cross a membrane. *Digestion* is their [hydrolysis](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#prop-b1-water-small-molecules-families), by [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme), into monomers small enough to be taken up: glucose, [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid), [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) and glycerol, [nucleotides](https://one-course.com/books/biology/3/en/chapter/11-nucleotides-and-nucleic-acids#def-b1-nucleic-acids-nucleotide). *Absorption* is the transport of those monomers across the [epithelium](https://one-course.com/books/biology/3/en/chapter/4-animal-body-plans-and-tissues#def-b1-body-plans-tissues-epithelium) of the gut into the blood or [lymph](https://one-course.com/books/biology/3/en/chapter/2-functional-organization-of-a-mammal#def-b1-mammal-organization-compartments). In animals digestion is *extracellular*, in the lumen of a tube open at both ends, which lets food be processed in stages as it moves, and lets the tube’s regions specialise.

**Proposition 22.2 (The digestive tract of a mammal).**

From mouth to anus the tube of a mammal is divided into regions, each with its own [epithelium](https://one-course.com/books/biology/3/en/chapter/4-animal-body-plans-and-tissues#def-b1-body-plans-tissues-epithelium), secretions and muscle: the *mouth*, where teeth grind and saliva moistens and begins to digest [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide); the *oesophagus*, a conduit; the *stomach*, a bag of acid where [proteins](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) are unfolded and cut, and food is held and released as a paste (chyme); the *small intestine* — duodenum, jejunum, ileum, six metres in a human — where the secretions of the *liver* (bile) and the *pancreas* ([enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) and bicarbonate) complete [digestion](#def-b1-digestion-absorption-nutrition) and where nearly all absorption takes place; the *large intestine*, where water is recovered and a dense microbial community ferments what is left; and the rectum. Muscle in the wall ([Chapter 4](https://one-course.com/books/biology/3/en/chapter/4-animal-body-plans-and-tissues#ch-b1-body-plans-tissues)) mixes the contents and propels them by *peristalsis*; sphincters hold them at each stage.

![The regions of a mammal’s digestive tract and what each does. Two glands outside the tube, the liver and the pancreas, pour their secretions into the small intestine, where digestion is completed and absorption occurs.](https://one-course.com/images/onecourse/chapters/biology-3/b1-digestion-absorption/fig-62e097b7cbad.svg)

*The regions of a mammal’s [digestive tract](#prop-b1-digestion-absorption-tract) and what each does. Two glands outside the tube, the liver and the pancreas, pour their secretions into the small intestine, where [digestion](#def-b1-digestion-absorption-nutrition) is completed and absorption occurs.*

## 22.2 Taking food apart

**Proposition 22.3 (The digestive enzymes).**

| [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) | source, site | substrate $\to$ product | optimum |
| --- | --- | --- | --- |
| amylase | saliva; pancreas, small intestine | [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) $\to$ maltose, dextrins | pH 7 |
| pepsin | stomach (as pepsinogen) | [proteins](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) $\to$ large peptides | pH 2 |
| trypsin, chymotrypsin | pancreas (as zymogens) | [proteins](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) $\to$ small peptides | pH 8 |
| carboxypeptidases | pancreas | peptides $\to$ [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) | pH 8 |
| lipase (with colipase) | pancreas | [triglycerides](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) $\to$ [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) $+$ monoglycerides | pH 8 |
| nucleases | pancreas | nucleic acids $\to$ [nucleotides](https://one-course.com/books/biology/3/en/chapter/11-nucleotides-and-nucleic-acids#def-b1-nucleic-acids-nucleotide) | pH 8 |
| maltase, sucrase, lactase | brush border of [enterocytes](#def-b1-digestion-absorption-surface) | [disaccharides](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-glycosidic) $\to$ [monosaccharides](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) | pH 7 |
| peptidases | brush border | di- and tripeptides $\to$ [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) | pH 7 |

Each [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) is a hydrolase ([Chapter 13](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#ch-b1-enzymes)) specific for one class of bond; each works at the pH of its region; and the proteases are made and stored as inactive zymogens, activated only in the lumen. Bile, made by the liver and stored in the gall bladder, contains no [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme): its *bile salts* emulsify [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) into droplets a micrometre across, on whose surface lipase can work, and carry the products in micelles to the absorbing [cells](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) ([Chapter 9](https://one-course.com/books/biology/3/en/chapter/9-lipids#ch-b1-lipids)).

**Example 22.4 (A meal’s chemistry).**

A slice of bread with butter and cheese: the [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) is attacked by salivary amylase in the mouth, stopped by the acid of the stomach, resumed by pancreatic amylase in the duodenum and finished by the brush-border maltase on the [enterocytes](#def-b1-digestion-absorption-surface) themselves; the cheese [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) is unfolded by the acid, cut by pepsin, cut further by trypsin and chymotrypsin, and finished to [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) and dipeptides at the brush border; the butter is melted, emulsified by bile, split by lipase into [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) and monoglycerides, and ferried in micelles to the membrane. Three hours from mouth to blood.

**Proposition 22.5 (Control of secretion).**

Secretion is timed to the food. The sight and smell of a meal, through the vagus nerve, start the flow of saliva and gastric juice before the first bite. Food in the stomach stretches its wall and its peptides release the hormone *gastrin*, which stimulates acid secretion; acid entering the duodenum releases *secretin*, which makes the pancreas pour bicarbonate to neutralise it; [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) and peptides in the duodenum release *cholecystokinin*, which makes the gall bladder contract and the pancreas release its [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme), and slows the stomach’s emptying so that the intestine is not overwhelmed. Each secretion is called by the substrate it acts on.

**Evidence.** Beaumont (1833) observed the stomach of a man left with an open wound, and saw gastric juice appear only when food touched the wall, and digest meat in a glass as it did in the stomach. Pavlov (1890s) fitted dogs with pouches of the stomach and fistulae of the pancreatic duct: the sight of food made the stomach secrete (cut the vagus and it did not); acid placed in the duodenum made the pancreas secrete even after every nerve was cut, and Bayliss and Starling (1902) showed that an extract of duodenal lining injected into the blood did the same — the first hormone, secretin. ∎

## 22.3 Taking the pieces in

**Definition 22.6 (The absorptive surface).**

The small intestine folds its lining into circular folds, then into *villi* a millimetre high, each covered by a single layer of *enterocytes* whose apical membranes bear microvilli — the *brush border* — so that a tube of $0.6\,\mathrm{m}^{2}$ offers some $200\,\mathrm{m}^{2}$ of membrane ([Chapter 4](https://one-course.com/books/biology/3/en/chapter/4-animal-body-plans-and-tissues#ch-b1-body-plans-tissues)). Inside each villus run a capillary network, which carries away sugars and [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) to the liver by the portal vein, and a central *lacteal*, a lymphatic vessel that carries away [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride). The enterocytes live four days and are replaced from the crypts between the villi.

![A villus cut open: one layer of absorbing cells over a core carrying a lymphatic vessel and a capillary network. Every absorbed molecule crosses two membranes and a few micrometres of tissue.](https://one-course.com/images/onecourse/chapters/biology-3/b1-digestion-absorption/fig-76fe10cd6717.svg)

*A [villus](#def-b1-digestion-absorption-surface) cut open: one layer of absorbing [cells](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) over a core carrying a lymphatic vessel and a capillary network. Every absorbed molecule crosses two membranes and a few micrometres of [tissue](https://one-course.com/books/biology/3/en/chapter/4-animal-body-plans-and-tissues#def-b1-body-plans-tissues-tissue).*

**Proposition 22.7 (Routes of absorption).**

*Sugars*: glucose and galactose enter the [enterocyte](#def-b1-digestion-absorption-surface) by the sodium–glucose [symporter](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#prop-b1-membranes-transport-secondary) ([Chapter 7](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#ch-b1-membranes-transport)), fructose by a carrier, and all leave by a carrier on the basal side into the blood. *[Amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid)* enter by several sodium-coupled [symporters](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#prop-b1-membranes-transport-secondary), and small peptides by a proton-coupled one, to be cut inside the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell). *[Fats](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride)*: [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) and monoglycerides leave their micelles and diffuse through the apical membrane; inside the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) they are re-esterified into [triglycerides](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride), coated with [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) into *chylomicrons* a micrometre across, and exocytosed into the lacteal, whose [lymph](https://one-course.com/books/biology/3/en/chapter/2-functional-organization-of-a-mammal#def-b1-mammal-organization-compartments) reaches the blood only at the neck — [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) bypasses the liver. *Water* follows the solutes osmotically: $9\,\mathrm{L}$ a day enter the gut (two drunk, seven secreted as saliva, gastric juice, bile, pancreatic and intestinal juice), and all but a tenth of a litre are reabsorbed, most in the small intestine and the rest in the colon. *Vitamins*, *iron* and *calcium* each have their carriers; vitamin B$_{12}$ needs a [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) from the stomach to be absorbed at all.

![Four routes across the enterocyte. Sugars and amino acids enter by sodium-coupled transport and leave by carriers into the blood; fats diffuse in from micelles, are rebuilt and leave as chylomicrons into the lymph; water follows.](https://one-course.com/images/onecourse/chapters/biology-3/b1-digestion-absorption/fig-bd44b43782e6.svg)

*Four routes across the [enterocyte](#def-b1-digestion-absorption-surface). Sugars and [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) enter by sodium-coupled transport and leave by carriers into the blood; [fats](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) diffuse in from micelles, are rebuilt and leave as chylomicrons into the [lymph](https://one-course.com/books/biology/3/en/chapter/2-functional-organization-of-a-mammal#def-b1-mammal-organization-compartments); water follows.*

**Method 22.8 (Reading an absorption experiment).**

1. Turn a segment of intestine inside out (an *everted sac* ), fill it with saline, and bathe it in a solution of the substance: what appears inside has crossed the [epithelium](https://one-course.com/books/biology/3/en/chapter/4-animal-body-plans-and-tissues#def-b1-body-plans-tissues-epithelium) from the former lumen.
2. Measure the transfer against concentration: saturating and stopped by the cold or by a poison of [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis — active or carrier-mediated; linear and insensitive — diffusion.
3. Remove sodium from the bath: if glucose or amino-acid transfer collapses, it was sodium-coupled. Add a competing sugar: if transfer falls, the two share a carrier.
4. Compare segments: most sugars and [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) cross in the jejunum, bile salts and vitamin B $_{12}$ only in the ileum, water and salt everywhere.

**Example 22.9 (The water budget).**

Of the nine litres that enter a human gut each day, the small intestine absorbs eight, the colon a further one, and $0.1\,\mathrm{L}$ [leaves](https://one-course.com/books/biology/3/en/chapter/3-functional-organization-of-a-flowering-plant#def-b1-flowering-plant-organization-organs) in the faeces. The small intestine’s sodium-coupled uptake of glucose drags water with it — which is why a solution of glucose and salt, taken by mouth, rehydrates a child with cholera when the toxin has turned the crypts into secretors: the [symporter](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#prop-b1-membranes-transport-secondary) is untouched and absorbs water faster than the toxin loses it ([Chapter 7](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#ch-b1-membranes-transport)).

## 22.4 Living on grass

**Proposition 22.10 (Symbiotic digestion of cellulose).**

No mammal makes a cellulase. Herbivores digest [cellulose](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) by housing bacteria, protists and fungi that do, in a [fermentation](https://one-course.com/books/biology/3/en/chapter/15-cellular-respiration-and-fermentation#def-b1-respiration-fermentation-fermentation) chamber where the microbes break the $\beta(1{\to}4)$ bonds ([Chapter 10](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#ch-b1-carbohydrates)) and ferment the sugars, without oxygen, to *volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid)* — acetate, propionate, butyrate — plus carbon dioxide and methane. The host absorbs the acids and lives on them. *Ruminants* (cattle, sheep, deer) put the chamber *before* the true stomach: the *rumen*, a vat of a hundred litres in a cow, where food is fermented for a day or two, regurgitated and chewed again, and from which the microbes themselves pass on to the abomasum and intestine to be digested as the animal’s main source of [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide). *Hindgut fermenters* (horses, rabbits, elephants) put the chamber *after* the small intestine, in an enlarged caecum and colon: they digest [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) themselves first, ferment the fibre afterward, and lose the microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) in their faeces — unless, like the rabbit, they eat their soft night droppings and pass them through a second time (*caecotrophy*).

![The four-chambered stomach of a cow: the great rumen and the reticulum where the microbes ferment, the omasum whose leaves absorb water, and the abomasum, the true acid stomach, where the microbes are digested.](https://one-course.com/images/onecourse/chapters/biology-3/b1-digestion-absorption/img-082e8753f3b2.jpg)

*The four-chambered stomach of a cow: the great rumen and the reticulum where the microbes ferment, the omasum whose [leaves](https://one-course.com/books/biology/3/en/chapter/3-functional-organization-of-a-flowering-plant#def-b1-flowering-plant-organization-organs) absorb water, and the abomasum, the true acid stomach, where the microbes are digested.*

**Example 22.11 (Two ways to eat a meadow).**

A cow ferments two thirds of the fibre and gets sixty percent of her energy as acetate and propionate — from which her liver must make every gram of glucose she needs, since almost none reaches her intestine; her rumen also turns the nitrogen of urea, recycled from her blood into her saliva, into microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide), so she can live on hay poorer in [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) than any other mammal could. A horse ferments less than half the fibre but digests the grass’s [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) itself, absorbs glucose, and passes food through in a day and a half instead of three: it gets less from each kilogram and eats more kilograms. The cow wins on poor pasture, the horse when it must run.

**Remark 22.12 (The length of a gut).**

A carnivore’s intestine is four times its body length, a herbivore’s ten to twenty: the poorer the food, the longer the tube and the larger the chambers. A tadpole eating algae has a long coiled gut that shortens abruptly at metamorphosis when the frog turns to insects; the same rule, written in one animal’s lifetime.

## 22.5 Exercises

**Exercise 22.1 ★.**

List the regions of the [digestive tract](#prop-b1-digestion-absorption-tract) and the main event in each.

**Solution of Exercise 22.1.**

Mouth: chewing, salivary amylase. Oesophagus: transport. Stomach: acid, pepsin, storage and mixing. Small intestine: bile and pancreatic [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) complete [digestion](#def-b1-digestion-absorption-nutrition); absorption. Large intestine: water and salt recovered, [fermentation](https://one-course.com/books/biology/3/en/chapter/15-cellular-respiration-and-fermentation#def-b1-respiration-fermentation-fermentation) by microbes. Rectum: storage and egestion.

**Exercise 22.2 ★.**

Which [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) digest [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide), where, and at what pH? Why are they made as zymogens?

**Solution of Exercise 22.2.**

Pepsin in the stomach at pH 2; trypsin, chymotrypsin and carboxypeptidases from the pancreas in the small intestine at pH 8; brush-border peptidases at pH 7. As zymogens, so that they do not digest the [cells](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) that make them; they are activated only in the lumen.

**Exercise 22.3 ★.**

From the absorption figure, name the route by which glucose, an [amino acid](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) and a [fatty acid](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) cross the [enterocyte](#def-b1-digestion-absorption-surface), and where each ends up.

**Solution of Exercise 22.3.**

Glucose: sodium symport in, carrier out, to the portal vein and the liver. [Amino acid](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid): sodium symport in, carrier out, portal vein. [Fatty acid](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid): diffusion in from a micelle, re-esterified, packed into a chylomicron, exocytosed into the lacteal and the [lymph](https://one-course.com/books/biology/3/en/chapter/2-functional-organization-of-a-mammal#def-b1-mammal-organization-compartments).

**Exercise 22.4 ★.**

What does bile do, and why does its absence make [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) [digestion](#def-b1-digestion-absorption-nutrition) fail although lipase is present?

**Solution of Exercise 22.4.**

Bile salts emulsify [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) into micrometre droplets and carry the products of lipase in micelles to the [enterocytes](#def-b1-digestion-absorption-surface). Without them the [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) stays as large drops with almost no surface for lipase, and the [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) released cannot be delivered to the membrane: [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) passes through undigested.

**Exercise 22.5 ★★.**

A meal of $100\,\mathrm{g}$ of [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) is digested to glucose in three hours. Compute the moles of [glycosidic bonds](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-glycosidic) hydrolysed, the water consumed, and the mean rate of glucose absorption in millimoles per minute.

**Solution of Exercise 22.5.**

$100/162 = 0.62\,\mathrm{mol}$ of glucose units, hence about $0.62\,\mathrm{mol}$ of bonds and $0.62\,\mathrm{mol}$ of water ($11\,\mathrm{g}$); $620/180 = 3.4\,\mathrm{mmol}/\mathrm{min}$ of glucose absorbed.

**Exercise 22.6 ★★.**

Explain, with the hormones of the chapter, what happens in the duodenum in the minutes after acid chyme and [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) arrive from the stomach, and why the stomach then slows down.

**Solution of Exercise 22.6.**

Acid releases secretin, which makes the pancreas secrete bicarbonate that neutralises the chyme; [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) and peptides release cholecystokinin, which contracts the gall bladder (bile enters), stimulates the pancreatic [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme), and inhibits gastric emptying, so that the duodenum receives chyme only as fast as it can neutralise and digest it.

**Exercise 22.7 ★★.**

An everted sac transfers glucose from a $5\,\mathrm{mmol}/\mathrm{L}$ bath until the inside reaches $40\,\mathrm{mmol}/\mathrm{L}$; with sodium replaced by potassium in the bath, the inside stops at $5\,\mathrm{mmol}/\mathrm{L}$. Interpret both results.

**Solution of Exercise 22.7.**

Glucose was concentrated eightfold against its gradient: [active transport](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#def-b1-membranes-transport-transporters). Without sodium the transport stops at equilibrium: the uptake is coupled to the sodium gradient (the sodium–glucose [symporter](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#prop-b1-membranes-transport-secondary)), not to [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) directly.

**Exercise 22.8 ★★.**

Why does [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) reach the blood through the [lymph](https://one-course.com/books/biology/3/en/chapter/2-functional-organization-of-a-mammal#def-b1-mammal-organization-compartments) rather than the portal vein, and what would happen if chylomicrons entered the portal blood directly?

**Solution of Exercise 22.8.**

Chylomicrons, a micrometre across, cannot cross the tight capillary wall but can enter the open-ended lacteals; the [lymph](https://one-course.com/books/biology/3/en/chapter/2-functional-organization-of-a-mammal#def-b1-mammal-organization-compartments) joins the blood at the neck, so [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) reaches the whole body before the liver, which would otherwise take it all up first. Entering the portal blood directly, the chylomicrons would clog the liver’s sinusoids and saturate its capacity to process [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) after every meal.

**Exercise 22.9 ★★.**

A cow secretes $100\,\mathrm{L}$ of saliva a day. Explain three functions of that saliva in a ruminant, one of them concerning nitrogen.

**Solution of Exercise 22.9.**

It moistens and floats the fibre for rumination; its bicarbonate and phosphate [buffer](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-buffer) the acids the microbes produce, holding the rumen near pH 6.5; and it carries urea from the blood, which the microbes turn into ammonia and then into their own [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide), recycling nitrogen that would otherwise be lost in urine.

**Exercise 22.10 ★★★.**

A patient’s pancreas fails. Predict the fate of each class of nutrient, the appearance of the faeces, and which foods could still be digested by the [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) that remain.

**Solution of Exercise 22.10.**

Without pancreatic amylase, proteases, lipase and bicarbonate: [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) is partly digested by saliva and the brush border only; [proteins](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) are cut by pepsin but not to absorbable size; [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) is not digested at all and appears in bulky, pale, greasy faeces. Sugars and [disaccharides](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-glycosidic) (brush-border [enzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) remain), some [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide), and small peptides can still be handled; [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) and most [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) cannot.

**Exercise 22.11 ★★★.**

A rabbit prevented from eating its night droppings loses weight on a diet on which control rabbits thrive. Explain what it loses, why a cow does not need such a habit, and why a horse cannot make up the loss either.

**Solution of Exercise 22.11.**

The caecal droppings carry the microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) and the B vitamins made in the caecum, which lies beyond the small intestine and so cannot be digested on the first passage; eaten, they pass the stomach and small intestine and are absorbed. The cow ferments before the stomach, so its microbes are digested downstream without any second passage. The horse’s caecum is also downstream, and the horse neither eats its droppings nor has any other route: its microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) is lost.

**Exercise 22.12 ★★★.**

“A cow is a [fermentation](https://one-course.com/books/biology/3/en/chapter/15-cellular-respiration-and-fermentation#def-b1-respiration-fermentation-fermentation) vat with legs.” Discuss in a paragraph: what the microbes give the cow (energy, [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide), vitamins), what the cow gives them, and where the design fails (methane, glucose, speed).

**Solution of Exercise 22.12.**

The microbes give the cow the energy of [cellulose](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) as [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid), [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) made from poor grass and even from urea, and every B vitamin; the cow gives them a warm, buffered, anaerobic vat kept full and stirred, and a hundred litres of saliva a day. The design’s costs: a tenth of the energy [leaves](https://one-course.com/books/biology/3/en/chapter/3-functional-organization-of-a-flowering-plant#def-b1-flowering-plant-organization-organs) as methane, no glucose is absorbed so the liver must make it all from propionate, [digestion](#def-b1-digestion-absorption-nutrition) takes three days, and the vat and its contents weigh a fifth of the animal — a cow cannot sprint, and a lion can.

## 22.6 Problem: The Cow and the Horse

**Problem 22.1.**

Weekend problem — ten kilograms of grass through a rumen and through a caecum: fibre fermented, acids absorbed, microbial protein gained or lost, methane vented, ending on the fraction of a cow’s energy that comes from volatile fatty acids

A cow and a horse each eat $10\,\mathrm{kg}$ of grass dry matter a day holding, by mass, $50\,\%$ [cellulose](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and hemicellulose (fibre), $20\,\%$ [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and sugars, $15\,\%$ [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) and $15\,\%$ of indigestible lignin and ash. Energy: [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) and [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) $17.5\,\mathrm{kJ}/\mathrm{g}$. [Fermentation](https://one-course.com/books/biology/3/en/chapter/15-cellular-respiration-and-fermentation#def-b1-respiration-fermentation-fermentation) of $1\,\mathrm{g}$ of [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) yields volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) holding $75\,\%$ of its energy, methane holding $8\,\%$, and heat and microbial growth the rest; it also yields $0.15\,\mathrm{g}$ of microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide). The rumen ferments $70\,\%$ of the fibre and all the [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and sugars; the horse’s hindgut ferments $45\,\%$ of the fibre, while its small intestine digests $90\,\%$ of the [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and $70\,\%$ of the [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) before the fibre reaches the hindgut. Both animals need $110\,\mathrm{MJ}$ of metabolisable energy a day.

**Part I — The cow’s rumen.**

1. Compute the mass of fibre, of [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and sugars, and of [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) eaten per day.
2. Compute the mass of [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) fermented in the rumen.
3. Compute the energy of that [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) and the energy recovered as volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) .
4. Compute the energy lost as methane, and the mass of methane ( $55\,\mathrm{kJ}/\mathrm{g}$ ) and its volume ( $1.4\,\mathrm{L}/\mathrm{g}$ ).
5. Compute the microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) produced.
6. Explain why the cow’s own [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) supply is largely the microbes, and where they are digested.
7. Compute the fraction of the fibre that [leaves](https://one-course.com/books/biology/3/en/chapter/3-functional-organization-of-a-flowering-plant#def-b1-flowering-plant-organization-organs) the rumen unfermented, and its fate.

**Part II — The cow’s balance.** The cow also digests $60\,\%$ of the dietary [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) that escapes the rumen ($40\,\%$ of the [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) eaten escapes) and all the microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide), at $17.5\,\mathrm{kJ}/\mathrm{g}$.

8. Compute the energy the cow obtains from [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) (dietary escape plus microbial).
9. Compute the cow’s total metabolisable energy: volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) plus [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) .
10. Compute the fraction of that energy supplied as volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) .
11. Does the cow meet her need of $110\,\mathrm{MJ}$ ? What does she do if not?
12. Almost no glucose is absorbed by the cow. Name the acid from which her liver makes glucose, and the process.

**Part III — The horse’s hindgut.**

13. Compute the energy the horse obtains from [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) digested in its small intestine (absorbed as glucose, $17.5\,\mathrm{kJ}/\mathrm{g}$ ).
14. Compute the energy from dietary [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) digested in the small intestine.
15. Compute the fibre fermented in the hindgut and the energy recovered as volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) .
16. Compute the microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) produced in the hindgut. What becomes of it?
17. Compute the horse’s total metabolisable energy and the fraction supplied as volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) .
18. Does the horse meet its $110\,\mathrm{MJ}$ ? How much grass would it need to eat, and how does it manage it?

**Part IV — Comparing designs.**

19. Compute the energy each animal extracts per kilogram of grass dry matter.
20. The cow’s methane is $8\,\%$ of the fermented energy. Compute its share of the cow’s gross energy intake, and the mass of methane a herd of a hundred cows vents in a year.
21. The cow’s food stays $70\,\mathrm{h}$ in the tract, the horse’s $36\,\mathrm{h}$ . Compute the mass of dry matter each holds in its gut at any moment, at constant intake.
22. A rabbit ferments fibre in its caecum and then eats its caecal droppings. What fraction of the microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) of question 16 could a horse recover if it did the same? Why does no horse do it?
23. Explain why the cow can live on a diet of straw with $4\,\%$ [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) plus urea, and the horse cannot.
24. A sprinting horse burns glucose from its own [glycogen](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) ; a cow cannot sprint. Relate this to the two designs.
25. State the result: the fraction of the cow’s metabolisable energy that comes from volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) , the horse’s fraction, and the energy each extracts per kilogram of grass.

**Solution of Problem 22.1.**

**1.** Fibre $5\,\mathrm{kg}$, [starch](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and sugars $2\,\mathrm{kg}$, [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) $1.5\,\mathrm{kg}$. **2.** $0.7\times 5 + 2 = 5.5\,\mathrm{kg}$. **3.** $5500\times 17.5 = 96\,\mathrm{MJ}$; VFA $0.75\times 96 =
72\,\mathrm{MJ}$. **4.** $0.08\times 96 = 7.7\,\mathrm{MJ}$; $7700/55 = 140\,\mathrm{g}$ of methane, about $200\,\mathrm{L}$. **5.** $0.15\times 5500 = 825\,\mathrm{g}$. **6.** Most dietary [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) is degraded by the microbes in the rumen and rebuilt as microbial [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide); the microbes flow on to the abomasum and small intestine, where they are digested like any meat. **7.** $30\,\%$ of the fibre, $1.5\,\mathrm{kg}$: partly fermented in the colon, mostly excreted. **8.** Escaped dietary [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) $0.4\times 1500 = 600\,\mathrm{g}$, digested $360\,\mathrm{g}$; microbial $825\,\mathrm{g}$; total $1185\,\mathrm{g}$ $\times 17.5 = 20.7\,\mathrm{MJ}$. **9.** $72 + 20.7 = 93\,\mathrm{MJ}$. **10.** $72/93 = 77\,\%$ (about $60\,\%$ once the heat of [fermentation](https://one-course.com/books/biology/3/en/chapter/15-cellular-respiration-and-fermentation#def-b1-respiration-fermentation-fermentation) and the energy of the colon’s contribution are accounted in fuller budgets; on this reckoning, three quarters). **11.** $93\,\mathrm{MJ}$ is short of $110\,$: the cow must eat more ($12\,\mathrm{kg}$), or better grass, or draw on her [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride). **12.** Propionate; [gluconeogenesis](https://one-course.com/books/biology/3/en/chapter/16-biosyntheses-and-the-integrated-cell#def-b1-biosyntheses-integration-gluconeogenesis) in the liver. **13.** $0.9\times 2000\times 17.5 = 31.5\,\mathrm{MJ}$. **14.** $0.7\times 1500\times 17.5 = 18.4\,\mathrm{MJ}$. **15.** $0.45\times 5 = 2.25\,\mathrm{kg}$; VFA $0.75\times 2250\times
17.5 = 29.5\,\mathrm{MJ}$. **16.** $0.15\times 2250 = 340\,\mathrm{g}$, lost in the faeces (the hindgut is beyond the small intestine). **17.** $31.5 + 18.4 + 29.5 = 79\,\mathrm{MJ}$; VFA share $29.5/79 =
37\,\%$. **18.** No: it needs $110/79\times 10 = 14\,\mathrm{kg}$ of grass, and manages by eating for sixteen hours a day and passing food through twice as fast. **19.** Cow $93/10 = 9.3\,\mathrm{MJ}/\mathrm{kg}$; horse $79/10 =
7.9\,\mathrm{MJ}/\mathrm{kg}$. **20.** Gross intake $10\,000\times 0.85\times 17.5 =
149\,\mathrm{MJ}$ (lignin and ash excluded); methane $7.7\,\mathrm{MJ}$ is $5\,\%$ of it; a hundred cows: $100\times 140\times 365 =
5.1\,\mathrm{t}$ of methane a year. **21.** Cow $10\times 70/24 = 29\,\mathrm{kg}$ of dry matter in the gut (plus ten times that of water); horse $10\times 36/24 =
15\,\mathrm{kg}$. **22.** In principle all $340\,\mathrm{g}$, worth $6\,\mathrm{MJ}$ and its essential [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid); a horse’s caecal contents are not separated into a soft nutrient-rich fraction as a rabbit’s are, and an animal of half a tonne cannot recover its own droppings from the ground in a useful state. **23.** The rumen microbes make [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) from urea nitrogen and straw carbon, and the cow digests the microbes: she needs almost no dietary [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide). The horse’s microbes are beyond its small intestine, so their [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) is lost, and the horse must find its [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) in the food itself. **24.** The horse absorbs glucose and stores [glycogen](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) in its muscles for anaerobic sprinting; the cow absorbs none, makes glucose slowly from propionate, and carries a hundred-litre vat — built to graze, not to run. **25.** About three quarters of the cow’s metabolisable energy on this budget ($60\text{ to }70\,\%$ in a full accounting) as volatile [fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid), against a third for the horse; $9.3\,\mathrm{MJ}$ against $7.9\,\mathrm{MJ}$ per kilogram of grass.
