London’s crowded back streets, as Gustave Doré saw them from a railway, 1872Gustave Doré, Over London by Rail, from London, a Pilgrimage (1872)
Cities stink, and their poor die young. The English social reformer Edwin Chadwick publishes a report on the living conditions of Britain’s working people, showing that those in crowded, filthy streets die far younger than those in clean ones. He and most doctors of the day blame miasma, bad air rising from rotting filth, sewage, and swamps, for cholera, typhus, and fevers. “All smell is, if it be intense, immediate acute disease,” Chadwick later tells a committee of Parliament. His cure is to clean up: drains, sewers, and fresh water. It saves many lives, though maybe not for the reason he thinks.
Diseases like cholera and fevers come from miasma: bad air given off by rotting filth, sewage, and swamps. Clean away the filth and its smell, and the disease goes with it.
The state of the discussion
At this point, the miasma theory has no pending criticisms, so it’s rationally adoptable.
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Sources:
Chadwick, Report on the Sanitary Condition of the Labouring Population of Great Britain (London, 1842)
Chadwick’s evidence to the Metropolitan Sewage Committee, Parliamentary Papers 10 (1846)
Ignaz SemmelweisPhotograph by József Borsos and Albert Doctor, 1860
In Vienna’s General Hospital, mothers beg not to be taken to the First Clinic. There, where doctors and medical students deliver babies, childbed fever killed 459 of the 4,010 women who gave birth in 1846: one in nine. In the Second Clinic next door, run by midwives, it killed one in thirty-six.
The Hungarian physician Ignaz Semmelweis, an assistant in the First Clinic, rules out cause after cause, bad air among them: both clinics breathe the same air. Then, in March, a colleague, Jakob Kolletschka, cuts his finger during an autopsy and dies of an illness just like childbed fever. The doctors, Semmelweis realizes, come to the mothers straight from dissecting corpses, carrying something from them on their hands. In May he makes them wash their hands in chlorinated lime. Deaths in his clinic fall from 18 in 100 births in April to 2 in June. They had dropped that low before, only to climb again. This time, they stay low.
Mothers who died of childbed fever in Vienna’s two maternity clinics, per 100 births, from Semmelweis’s tables: the doctors’ clinic month by month, the midwives’ year by year. For years, deaths in the doctors’ clinic swing from high to low and back. Before, a low month was luck; after handwashing, every month is low, about as low as in the midwives’.
In October, the doctors examine a woman with a foul-smelling cancer of the womb first, wash only with soap, and go on to twelve women in labor. Eleven of them die. No corpse was involved, so Semmelweis widens his theory: any decaying matter can cause the fever, from the living too, and hands must be washed in chlorine between every examination.
Many of his colleagues remain unconvinced, and two years later he loses his post. Back in Hungary, as head of a maternity ward in Pest, he brings deaths down to under one in a hundred. But when his book finally appears in 1861, most doctors reject it, and he answers them with furious open letters, calling them murderers. In 1865, colleagues have him committed to an asylum in Vienna. Beaten by the guards, he dies two weeks later, at 47, of an infected wound, much like the infections he fought.
Childbed fever comes from particles of corpses, which doctors and students carry on their hands from the dissecting room to the mothers they examine. Wash them off in chlorinated lime, and the fever goes.
In October, the doctors examined a woman with a foul-smelling cancer of the womb, washed only with soap, and went on to twelve women in labor. Eleven of them died, though no corpse was involved.
Childbed fever kills mothers four times as often in the doctors’ clinic as in the midwives’ clinic next door, though both breathe the same air. Since the doctors began washing their hands in chlorine after dissecting corpses, deaths have fallen from 18 in a hundred births to 2. The cause comes on the doctors’ hands, not from the air both clinics share.
Childbed fever comes from decaying matter, from corpses or from the living, like a cancer or a festering wound, carried to the mothers on hands and instruments, and now and then through a ward’s air. Wash hands in chlorinated lime between every examination, and the fever goes.
The state of the discussion
The miasma theory now has a pending criticism, so it isn’t rationally adoptable anymore. Semmelweis’s theory of childbed fever, as he revised it, has none, so it is.
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Sources:
Semmelweis, Die Ätiologie, der Begriff und die Prophylaxis des Kindbettfiebers (Pest, Vienna, and Leipzig, 1861)
K. Codell Carter and Barbara R. Carter, Childbed Fever: A Scientific Biography of Ignaz Semmelweis (Westport, 1994)
Snow’s map of the outbreak, a bar for each death, with the Broad Street pump at its heartJohn Snow, On the Mode of Communication of Cholera (London, 1855)
On the night of August 31, cholera explodes in Soho. Within ten days, more than 500 people living within 250 yards of one street corner are dead. The English physician John Snow, who has long argued that cholera spreads through water, marks where the dead lived. They cluster around the public pump on Broad Street. The exceptions fit too: a nearby workhouse with its own well loses only 5 of its 535 inmates, and none of the more than 70 men at the brewery, who drink beer, die.
On September 8, at Snow’s urging, the parish takes the handle off the pump. The outbreak is already waning by then, as Snow admits, with so many dead or fled. A local curate, Henry Whitehead, at first skeptical, later finds how the well was fouled: by a sick baby’s diapers, rinsed into a cesspool three feet from it.
Cholera is caused by a poison that multiplies inside its victims, leaves them in their waste, and spreads when others swallow it, mostly in water fouled by sewage. “For the morbid matter of cholera having the property of reproducing its own kind, must necessarily have some sort of structure, most likely that of a cell.”
The Broad Street outbreak’s deaths cluster around one pump, and those spared drank other water: the workhouse its own well, the brewery’s men their beer. Bad air would have spared no one in the same streets.
The state of the discussion
The miasma theory now has two pending criticisms. Snow’s waterborne cholera has none, so it’s rationally adoptable, like Semmelweis’s theory of childbed fever.
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Sources:
Snow, On the Mode of Communication of Cholera, 2nd edition (London, 1855)
Whitehead, in Report on the Cholera Outbreak in the Parish of St. James, Westminster, during the Autumn of 1854 (London, 1855)
Snow finds a test that no one could have planned. In South London, two water companies supply the same streets, their pipes running side by side, so that next-door neighbors often drink different water. The Southwark and Vauxhall Company takes its water from the Thames in London, below the sewers that empty into it. The Lambeth Company moved its intake upriver in 1852, above them. In the first seven weeks of the 1854 epidemic, houses on Southwark and Vauxhall water lose 315 people to cholera for every 10,000 houses, and those on Lambeth water 37. Snow publishes it all in the new edition of his book. The government’s General Board of Health isn’t persuaded: its committee still blames the air.
Cholera deaths per 10,000 houses in the first seven weeks of the 1854 epidemic, by who supplied the water, from Snow’s table.
Where two water companies supply the same streets, houses drinking Thames water taken below London’s sewers lose more than eight times as many people to cholera as houses drinking water taken above them. Same streets, same air, different water.
The state of the discussion
The miasma theory now has three pending criticisms. Snow’s waterborne cholera and Semmelweis’s theory of childbed fever are still rationally adoptable.
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Sources:
Snow, On the Mode of Communication of Cholera, 2nd edition (London, 1855), table IX
Report of the Committee for Scientific Inquiries in Relation to the Cholera-Epidemic of 1854 (London, 1855)
Microbes have been seen through microscopes since the 1670s, when the Dutch draper and lens maker Antonie van Leeuwenhoek first saw what he called animalcules. But where do they come from? Many naturalists believe they arise on their own, from the broth or the rotting matter they’re found in. The French naturalist Félix Pouchet defended this “spontaneous generation” in a book in 1859.
The French chemist Louis Pasteur boils broth in flasks whose necks he has drawn out into long, bent curves, like a swan’s. Air can get in, but the dust it carries, with whatever germs ride on it, settles in the low bend. The broth stays clear for as long as he cares to watch. Tip a flask so that the broth touches the bend, though, and in a few days it teems with life. The Academy of Sciences had offered a prize for experiments that would show whether life can arise on its own, and awards it to Pasteur. Life, it seems, comes only from life, even at its smallest.
Pasteur puts the finding to work. In 1865, he patents a way to keep wine from spoiling: heat it gently, enough to kill the microbes in it, without boiling it. The method, named pasteurization after him, is later applied to milk, once a common carrier of tuberculosis and typhoid, and makes it far safer. Today it’s used on milk, juices, and much else we eat and drink, saving uncountably many lives.
Drag the slider to move through a month. Air reaches both flasks of boiled broth, but the dust in it settles in the bend of the neck. The one left alone stays clear. The other is tipped on day 10, so the broth runs into the bend and back, and soon it’s cloudy with microbes.
Broth boiled in a flask with a long, bent neck stays free of life, though air reaches it, because the germs carried by the air’s dust settle in the bend. Tip the flask so that the broth touches the bend, and it soon teems with microbes. They come from germs, not from the broth.
The state of the discussion
Spontaneous generation has a pending criticism, so it isn’t rationally adoptable. The miasma theory still has three, and Snow’s waterborne cholera and Semmelweis’s theory of childbed fever none.
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Sources:
Pasteur, “Mémoire sur les corpuscules organisés qui existent dans l’atmosphère”, Annales des sciences naturelles, Zoologie 16 (1861), 5–98
Pouchet, Hétérogénie, ou traité de la génération spontanée (Paris, 1859)
In the hospitals of the day, a broken bone that pierces the skin often means death: the wound festers, and gangrene sets in. Surgeons blame the bad air of their wards. The English surgeon Joseph Lister, working in Glasgow, reads Pasteur and draws a different conclusion: wounds go bad the way broth does, because germs get into them. He dresses wounds with carbolic acid, which kills germs, and washes his hands and instruments in it.
In 1867 he reports his first cases: open fractures that would once have meant amputation heal cleanly. Three years later he counts the deaths after amputations in his wards: 16 of 35 patients before he began, 6 of 40 since, in the same wards with the same air.
Twenty years earlier, in Vienna, Semmelweis saved mothers the same way, with chlorine on the doctors’ hands, and was ignored, though he blamed decaying matter, not living germs. Lister doesn’t know of him yet, but his germs answer Semmelweis’s decaying matter all the same.
Wounds fester for the same reason broth goes bad: germs get into them from outside. Kill the germs, on the wound, the instruments, and the surgeon’s hands, and wounds heal clean.
In my wards, 16 of 35 patients died after amputations before I began killing germs with carbolic acid, and 6 of 40 since. The air is the same as before; only the germs are gone.
Decay doesn’t come about by itself. As Pasteur showed, it’s the work of germs, living things that get in from outside and multiply. What spreads infection is the germs, not decaying matter as such.
The state of the discussion
The miasma theory now has four pending criticisms, and Semmelweis’s theory of childbed fever one. Lister’s germ theory of infection has none, so it’s rationally adoptable, like Snow’s waterborne cholera.
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Sources:
Lister, “On a New Method of Treating Compound Fracture, Abscess, &c.”, The Lancet 89 (1867), March to July
Lister, “On the Antiseptic Principle in the Practice of Surgery”, The Lancet 90 (1867), 353–356
Lister, “On the Effects of the Antiseptic System of Treatment upon the Salubrity of a Surgical Hospital”, The Lancet 95 (1870), 4–6, 40–42
For the first time, one particular germ is shown to cause one particular disease. Anthrax kills cattle and sheep across Europe, and rod-shaped bacteria had been seen in the blood of animals that died of it. The German physician Robert Koch, a district medical officer working in a makeshift laboratory in his home in Wollstein, grows these bacteria in drops of fluid from cattle’s eyes, outside any animal, passing them from drop to drop for eight generations. Injected into mice, the last generation still kills them with anthrax. He also finds that the bacteria form hardy spores, which survive in the soil for years, explaining why some pastures stay deadly. Bad air can’t be grown in a drop of fluid.
Anthrax comes from one particular germ. Grown outside any animal for eight generations, it still gives mice anthrax. Its spores survive in the soil for years, which is why some pastures stay deadly, whatever their air.
The state of the discussion
The miasma theory now has five pending criticisms, and Semmelweis’s theory of childbed fever still one. Both germ theories, Snow’s waterborne cholera and Lister’s germ theory of infection, are still rationally adoptable.
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Source: Koch, “Die Ätiologie der Milzbrand-Krankheit, begründet auf die Entwicklungsgeschichte des Bacillus Anthracis”, Beiträge zur Biologie der Pflanzen 2 (1876), 277–310
Max von PettenkoferPhotograph by Franz Hanfstaengl, about 1860
One of Germany’s most famous scientists drinks cholera to prove a point. Koch identified the cholera germ, a comma-shaped bacterium, in 1883 and 1884, though the Italian anatomist Filippo Pacini had described it in 1854. The German chemist and hygienist Max von Pettenkofer isn’t convinced: a germ alone, he holds, can’t cause cholera without the right conditions in the soil. That summer and fall, cholera kills about 8,600 people in Hamburg. On October 7, Pettenkofer, aged 73, drinks a culture of the germ in front of witnesses, with baking soda to neutralize his stomach acid. He gets nothing worse than diarrhea.
Koch, sent to Hamburg, finds that Altona, the next town over, on the same soil and under the same sky, is largely spared. The difference is the water: Hamburg drinks it unfiltered from the river Elbe, while Altona, which draws its water from the river below Hamburg, sewage and all, filters it.
I drank a culture of the cholera germ and got nothing worse than diarrhea. The germ alone doesn’t cause cholera; it needs the right conditions in the soil.
In Hamburg’s epidemic, the town of Altona next door was largely spared, on the same soil and under the same sky. Only its water differs: Altona filters it. The germ in the water decides it, not the soil.
The state of the discussion
Koch answers Pettenkofer, so Snow’s waterborne cholera is still rationally adoptable, as is Lister’s germ theory of infection. The miasma theory still has five pending criticisms, and spontaneous generation and Semmelweis’s theory of childbed fever one each.
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Sources:
Pettenkofer, “Ueber Cholera, mit Berücksichtigung der jüngsten Choleraepidemie in Hamburg”, Münchener medizinische Wochenschrift 39 (1892)
Koch, “Wasserfiltration und Cholera”, Zeitschrift für Hygiene und Infektionskrankheiten 14 (1893), 393–426
Tuberculosis bacteria, magnified about 15,500 times by a scanning electron microscopeJanice Carr and Ray Butler, Centers for Disease Control and Prevention
Can a germ float from one person to the next? Since the 1930s, the American sanitary engineer William Wells had argued that tuberculosis spreads on droplets coughed or breathed out, so small that they stay in the air. With the American physician Richard Riley, he pipes the air from a tuberculosis ward at a veterans’ hospital in Baltimore into a room of guinea pigs. Over the years, dozens of them catch the disease. In a second room, guinea pigs breathe the same air, but with ultraviolet lamps killing the germs in it first, and none fall ill.
So the air was never bad in itself, as the miasma theory had it. What makes it dangerous is the germs riding in it, as they rode on the dust in Pasteur’s flasks.
Today, germs are known to cause most infectious diseases: bacteria like the ones Koch grew, viruses too small for an ordinary microscope, and fungi and parasites too. The viruses of measles and the flu, among other germs, spread through the air.
Semmelweis never found out what caused childbed fever: he blamed decaying matter, not germs. But he took an idea seriously, tested it, acted on it, and stood by it when almost no one else would. Rejected in his lifetime, he is remembered today as the savior of mothers, and Budapest’s medical university bears his name.
Germs cause infectious diseases, and they pass from one person to the next by touch, in water or food, and through the air, on droplets so small that they float. Tuberculosis spreads that way.
Guinea pigs breathing air from a tuberculosis ward caught the disease. With ultraviolet light killing the germs in the same air, they didn’t. It’s the germs in the air that spread disease, not the air itself.
The state of the discussion
The germ theory of disease has no pending criticisms, so it’s rationally adoptable, as is Snow’s waterborne cholera. The miasma theory now has six pending criticisms.
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Sources:
Riley et al., “Aerial Dissemination of Pulmonary Tuberculosis: A Two-Year Study of Contagion in a Tuberculosis Ward”, American Journal of Hygiene 70 (1959), 185–196
Riley et al., “Infectiousness of Air from a Tuberculosis Ward”, American Review of Respiratory Disease 85 (1962), 511–525
Researched and written with the help of AI, from the sources named. AI can make mistakes. Veritula doesn’t claim perfect historical accuracy; the sources are there to check against.
Physicians blamed disease on foul air while their own hands spread it from patient to patient. A few doubters found the real cause: living things too small to see. Their discovery has saved countless lives.
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The discussion as it was in 1855. Chronicle discussions are read-only. Jump to the present
Diseases like cholera and fevers come from miasma: bad air given off by rotting filth, sewage, and swamps. Clean away the filth and its smell, and the disease goes with it.
Childbed fever kills mothers four times as often in the doctors’ clinic as in the midwives’ clinic next door, though both breathe the same air. Since the doctors began washing their hands in chlorine after dissecting corpses, deaths have fallen from 18 in a hundred births to 2. The cause comes on the doctors’ hands, not from the air both clinics share.
The Broad Street outbreak’s deaths cluster around one pump, and those spared drank other water: the workhouse its own well, the brewery’s men their beer. Bad air would have spared no one in the same streets.
Where two water companies supply the same streets, houses drinking Thames water taken below London’s sewers lose more than eight times as many people to cholera as houses drinking water taken above them. Same streets, same air, different water.
Childbed fever comes from decaying matter, from corpses or from the living, like a cancer or a festering wound, carried to the mothers on hands and instruments, and now and then through a ward’s air. Wash hands in chlorinated lime between every examination, and the fever goes.
Cholera is caused by a poison that multiplies inside its victims, leaves them in their waste, and spreads when others swallow it, mostly in water fouled by sewage. “For the morbid matter of cholera having the property of reproducing its own kind, must necessarily have some sort of structure, most likely that of a cell.”
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Comment on #5773 by Robert Koch·#5782
The cause of cholera is a comma-shaped bacterium, which I found in 1883 and 1884 in the intestines of its victims.