Timeline Entry

The First Long-Term Successful Kidney Transplant, 1954

On 23 December 1954 at the Peter Bent Brigham Hospital in Boston, Massachusetts, Ronald Herrick gave a kidney to his monozygotic (identical) twin, Richard, who was dying from chronic kidney disease. J. Hartwell Harrison led the donor operation, Joseph Murray led the recipient operation, and nephrologist John Merrill directed Richard's renal care. The graft restored kidney function and Richard lived for more than eight years. This is commonly called the first successful kidney transplant; more precisely, it was the first to produce sustained function and multi-year survival (Merrill et al.; Desai et al.).

The operation did not invent kidney transplantation, inaugurate living donation, or solve rejection. Its importance was narrower and stronger: it showed that a surgically transferred human kidney could correct the physiology of advanced renal failure when immune incompatibility was absent. That result turned rejection from one obstacle among many into the field's defining problem, while making the risks borne by a healthy donor impossible to ignore.

Historical Significance

A durable result in an exceptional biological case

Earlier human kidney grafts had produced no urine, brief urine production, or temporary support. Richard Herrick's graft instead corrected uraemia and, after his diseased native kidneys were removed, severe hypertension. The difference between an operation that was technically completed and one that restored health over years is the reason the 1954 case became a landmark (Merrill et al.; Barker and Markmann).

It demonstrated sustained organ function

The graft was not merely a temporary biological filter. It took over renal function, permitted Richard to leave hospital, and supported his life for more than eight years. The contemporary report documented immediate activity and eleven-month survival; later follow-up established the much longer outcome (Merrill et al.; Desai et al.).

It bypassed rather than conquered rejection

A kidney exchanged between monozygotic twins did not present the usual inherited tissue differences. No antirejection treatment was needed. Success therefore demonstrated what transplantation could achieve if the immune barrier were removed, but it supplied no generally usable method for removing that barrier (Starzl and Barker).

It depended on a hospital system

Vascular and urological technique, dialysis, anaesthesia, pathology, laboratory testing, nursing, and postoperative fluid management all mattered. Later fame centred on Murray, but contemporary publications and archival reconstruction describe a coordinated renal and surgical programme (Leeson and Desai; Murray).

What “First” Means

The Boston operation was not the first human attempt

Priority depends on the outcome being measured. In 1933, Yurii Voronoy in Soviet Ukraine performed the first documented human-to-human kidney allograft; his account appeared in the mid-1930s, which explains why some older histories date the event to 1936. The deceased-donor kidney had been without circulation for hours, crossed an incompatible ABO blood group, did not function, and the recipient died after two days. It was a first attempt, not a therapeutic success (Barker and Markmann).

In Chicago on 17 June 1950, Richard Lawler's team placed a deceased donor's kidney in Ruth Tucker, who retained another diseased kidney. The graft may have produced urine for a time and was later removed after it had become small. Tucker survived for years, but historical reviews caution that her own kidney sustained her and that the graft's benefit cannot be established. Calling this simply the first “successful” transplant confuses recipient survival with durable graft function (Barker and Markmann).

French work supplied another essential precedent. René Küss, Charles Dubost, Marceau Servelle, and their colleagues developed pelvic implantation using the iliac vessels. In December 1952 at Hôpital Necker in Paris, Louis Michon, Jean Hamburger, and colleagues transplanted a kidney from Gilberte Renard to her son Marius after an accident left him without renal function. The graft worked for about three weeks before rejection. This was the first kidney removed from a healthy volunteer for another person's benefit; Ronald Herrick was therefore not the first living kidney donor (Legendre and Kreis).

The defensible Boston priority is consequently specific: the Herrick graft was the first human kidney transplant to restore function for years. It was also the first long-term successful solid-organ transplant. Stating that achievement precisely preserves the earlier work and the patients whose short-lived grafts supplied evidence about technique, rejection, and risk.

Before Boston

Surgery, dialysis, and immunology converged

A transplanted kidney needed an arterial inflow, venous drainage, and a path for urine to reach the bladder. Fine vascular suturing developed around the turn of the twentieth century made those connections possible. French surgeons then helped establish an extraperitoneal pelvic site close to the iliac blood vessels and bladder. The 1954 operation belonged to this international circulation of technique, as well as to the longer history of safer operative practice (Barker and Markmann).

Dialysis made experimentation clinically possible without making chronic kidney failure routinely survivable. Willem Kolff brought his artificial kidney design to the Brigham after the Second World War; George Thorn, John Merrill, Carl Walter, and colleagues adapted it into the Kolff-Brigham machine. It could support selected patients with acute, potentially reversible kidney failure and could stabilise Richard before surgery, but maintenance haemodialysis was not yet an established long-term alternative (Murray).

The Brigham programme had already tested nine human grafts under David Hume, Merrill, Benjamin Miller, and Thorn. Most kidneys were placed in the thigh, with the ureter draining through the skin so that output could be observed. One functioned for nearly six months, but every recipient ultimately died. Their 1955 report explicitly described the work as investigation rather than established treatment—important evidence of both what the team learned and how experimental surgery was justified in terminal illness (Hume et al.).

Wartime skin-graft research by Thomas Gibson and Peter Medawar had shown that a second graft from the same genetically different donor was rejected more rapidly, evidence of an acquired immune response. By contrast, earlier skin grafts between identical twins could persist. The Herrick case applied that distinction to a whole organ. Contemporary authors used homograft or homotransplant for transfer within the human species; allograft is now usual for genetically different members of one species, while an identical-twin graft is more exactly an isograft or syngeneic graft (Barker and Markmann).

Chronology

From failed grafts to a reproducible clinical programme

  1. 1933: Voronoy performs the first documented human-to-human kidney graft in Soviet Ukraine. The kidney does not function and the recipient dies after two days; the case is published later in the decade (Barker and Markmann).
  2. 1940s: Kolff's dialysis work and Medawar's skin-graft experiments create two different resources for transplantation: temporary renal support and an immunological explanation of rejection (Murray; Barker and Markmann).
  3. 17 June 1950: Lawler's Chicago team transplants a deceased-donor kidney into Tucker. The graft does not provide durable renal replacement, although publicity encourages further clinical attempts (Barker and Markmann).
  4. 1951-1953: Paris teams establish pelvic implantation; the Brigham group reports transient function in experimental human grafts; and the Renard mother-to-son operation in Paris demonstrates both the promise and rejection of a living-donor kidney (Hume et al.; Legendre and Kreis).
  5. Autumn 1954: Richard Herrick arrives at the Brigham with uraemia and severe hypertension. The team compares the brothers' blood groups and physical characteristics and exchanges skin grafts to build the strongest evidence then available that they were monozygotic twins (Merrill et al.).
  6. 23 December 1954: Harrison removes Ronald's kidney and Murray's team implants it in Richard's pelvis. Merrill directs renal management and Leroy Vandam oversees anaesthesia. The graft begins to function during the operation (Merrill et al.; Leeson and Desai).
  7. 28 January 1956: Merrill, Murray, Harrison, and Warren Guild publish their detailed report in JAMA. At eleven months the graft remained functional; the article's cautious conclusion limited dependable graft survival to identical twins (Merrill et al.).
  8. 1958: the Boston group reports seven identical-twin pairs. A series, rather than one celebrated operation alone, shows that sustained renal grafting in this special setting is reproducible (Murray, Merrill, and Harrison).
  9. 24 January 1959: the Brigham team obtains long survival between fraternal twins after total-body irradiation. This crosses a genetic barrier, but radiation proves hazardous and unreliable (Starzl and Barker).
  10. 1962-1963: azathioprine-based regimens in Boston and azathioprine with prednisone in Denver produce longer survival in genetically different recipients. Rejection, infection, and drug toxicity remain frequent, but kidney transplantation begins to become a clinical service rather than an identical-twin exception (Starzl and Barker).
  11. 1990: Murray shares the Nobel Prize in Physiology or Medicine with E. Donnall Thomas for discoveries concerning organ and cell transplantation. The award recognises a larger research trajectory, not the work of every participant in the 1954 operation (Nobel Assembly).

The Operation and Care

The graft was a third kidney before the diseased kidneys were removed

Richard had advanced chronic renal disease then often described with the broad historical term Bright's disease; the clinical report used evidence of severely atrophied kidneys, uraemia, oedema, anaemia, and malignant hypertension. “Bright's disease” should not be read as one modern diagnosis. Later follow-up identified his disease as glomerulonephritis (Merrill et al.; Desai et al.).

Confirmation of twin identity was crucial because no effective, acceptably safe immunosuppressive regimen existed. The team compared fingerprints and other inherited characteristics, tested blood groups, and observed that exchanged skin grafts were not rejected. These methods preceded modern HLA typing; they were used to establish monozygosity, not to discover a close enough match between ordinary siblings (Merrill et al.).

In adjoining operating rooms, Harrison's team removed a kidney from Ronald while Murray's team prepared vessels in Richard's lower abdomen. The donor kidney was placed outside the peritoneal cavity in the pelvis, its vessels joined to the iliac circulation and its ureter connected to the bladder. The primary report records an eighty-two-minute period without blood flow and functional activity after circulation was restored. This pelvic graft was initially an additional, third kidney; it did not occupy the anatomical site of either native kidney (Merrill et al.).

Richard's high blood pressure persisted after the graft began filtering his blood. Only after surgeons removed both of his severely diseased kidneys did the hypertension resolve. That sequence mattered scientifically: the graft corrected renal failure, while the native organs continued to drive another dangerous part of his illness. Success required serial operations, fluid and electrolyte management, dialysis, laboratory measurement, and nursing after the headline procedure (Merrill et al.; Leeson and Desai).

Accounts that reduce the event to “Murray performed the first transplant” obscure divided responsibility. Harrison accepted and carried out the operation on the healthy donor; Merrill and the renal service selected and prepared the recipient; Vandam managed anaesthesia; Gustave Dammin and the pathology service studied the renal disease; and the hospital's staff sustained two patients. Murray himself later presented the institutional programme, rather than a lone surgeon, as the necessary unit of achievement (Murray; Desai et al.).

Living Donation and Consent

A healthy brother accepted risk without physical benefit

Ronald's nephrectomy could not improve his own health. The justification rested on his willingness to accept anaesthetic, haemorrhagic, infectious, and uncertain long-term risks for a possible benefit to Richard. Clinicians had evidence that a person could live with one kidney, but the long-term evidence available in 1954 was limited. The moral problem was therefore not erased by the twin match; the match made a benefit plausible enough for the problem to be confronted (Leeson and Desai).

Later accounts by Murray and other participants say that the team consulted physicians, clergy, and legal advisers and held repeated discussions with the twins and their family. Those recollections are valuable, and Leeson and Desai compared them with hospital records and personal notes. They do not document a modern research ethics committee, a standardised consent form, or an independent donor advocate—institutions and expectations that developed later. It would be presentist either to claim that no ethical scrutiny occurred or to say that present-day consent protections were already in place (Leeson and Desai; Murray).

Kinship could support an extraordinary act of care while also making refusal emotionally difficult. The surviving literature is dominated by clinicians' reports and later institutional memory; it cannot fully reconstruct private family pressure or what each brother understood at every stage. Ronald's later recollections describe initial conflict as well as determination to help Richard. They are testimony remembered decades afterward, not a verbatim record of consent in 1954 (Murray).

The Paris operation of 1952 prevents another heroic simplification. Gilberte Renard had already undergone nephrectomy for her son, whose graft failed after three weeks. The Herrick case made successful living donation visible, but the ethical history includes an earlier donor and recipient whose outcome did not become the field's triumphant origin story (Legendre and Kreis).

Outcome and Limits

Eight years of life, followed by recurrent kidney disease

Richard recovered sufficiently to marry Clara, a nurse he had met during his illness, and they had two children. He died on 14 March 1963, more than eight years after transplantation. Later summaries disagree about the cause, with some attributing his death to cardiac disease. A 2007 peer-reviewed follow-up based on participants and surviving family reports that glomerulonephritis recurred in the donated kidney and that Richard died of renal failure. The recurrence is also recorded in Francis Moore's participant memoir; that is the better-supported account, although neither source is a newly produced autopsy report (Desai et al.).

Ronald's long survival showed that donation had not produced an evident catastrophic late outcome in this individual, but one donor could not settle the lifetime safety of nephrectomy for everyone. His experience became a powerful symbol of altruistic donation; it should not be used as if it were a controlled study of donor risk (Desai et al.).

Biologically, the 1954 success was a limiting case. It demonstrated surgical feasibility and renal recovery under nearly ideal genetic compatibility. The decisive generalisation came later, through hazardous irradiation, azathioprine and corticosteroids, tissue-antigen research, improved matching, pathology, infection control, organ preservation, and organised follow-up. None was a single solution: suppressing rejection could expose recipients to lethal infection and drug toxicity (Starzl and Barker; Barker and Markmann).

The strongest historical claim is therefore not that one operation created modern transplantation. The Herrick case supplied durable proof of what a functioning graft could do, clarified the biological question that had to be solved for genetically different people, and joined organ replacement to a continuing ethics of donor risk. Later programmes made that exceptional proof into an imperfect but repeatable treatment.

Explore Connected Pages

Follow the wider history of transplantation and surgery

  1. The first human-to-human heart transplant

    Compare the 1967 Cape Town operation, when technical replacement again outpaced reliable control of rejection and infection.

  2. Antiseptic surgery

    Place transplantation within the longer material history of infection control and safer operating rooms.

  3. The history of medical ethics

    Explore how consent, research, professional authority, and risk changed across clinical settings.

References

Sources and further reading

  1. John P. Merrill, Joseph E. Murray, J. Hartwell Harrison, and Warren R. Guild, “Successful Homotransplantation of the Human Kidney Between Identical Twins”

    JAMA 160, no. 4 (28 January 1956): 277-282. The principal clinical report documents the diagnosis, tests for monozygosity, operation, graft function, persistent hypertension, native nephrectomies, and eleven-month result. It is indispensable primary evidence, but its follow-up was still short and its authors were reporting their own celebrated experiment.

  2. David M. Hume, John P. Merrill, Benjamin F. Miller, and George W. Thorn, “Experiences with Renal Homotransplantation in the Human: Report of Nine Cases”

    Journal of Clinical Investigation 34, no. 2 (February 1955): 327-382. Submitted before the Herrick operation, this detailed primary report records the Brigham programme's earlier failures and transient graft function. The authors explicitly presented these cases as investigation rather than proven therapy.

  3. Joseph E. Murray, John P. Merrill, and J. Hartwell Harrison, “Kidney Transplantation Between Seven Pairs of Identical Twins”

    Annals of Surgery 148, no. 3 (September 1958): 343-359. This early clinical series shows how the Boston team tested whether the first result was reproducible and describes the surgical, physiological, and disease-related complications that remained even without ordinary allograft rejection.

  4. Clyde F. Barker and James F. Markmann, “Historical Overview of Transplantation”

    Cold Spring Harbor Perspectives in Medicine 3, no. 4 (2013): a014977. This scholarly overview is used for Voronoy, Lawler, the French and Boston programmes, and the distinction between technical attempts and durable therapeutic success. The authors openly note that landmark narratives vary with participants' perspectives.

  5. Christophe Legendre and Henri Kreis, “A Tribute to Jean Hamburger's Contribution to Organ Transplantation”

    American Journal of Transplantation 10, no. 11 (2010): 2392-2395. This French institutional retrospective documents the Renard mother-to-son donation, the graft's three-week function, and the pelvic technique that preceded Boston. Its commemorative purpose is balanced here with the independent overview by Barker and Markmann.

  6. Stanley Leeson and Sukumar P. Desai, “Medical and Ethical Challenges During the First Successful Human Kidney Transplantation in 1954 at Peter Bent Brigham Hospital, Boston”

    Anesthesia & Analgesia 120, no. 1 (January 2015): 239-245. Based on publications, hospital records, personal notes, and participant conversations, this study reconstructs preparation, anaesthesia, institutional conditions, and ethical deliberation. Its close Brigham affiliation makes explicit source comparison important.

  7. Sukumar P. Desai et al., “A Semi-Centennial Report on the Participants Depicted in Joel Babb's Portrait, ‘The First Successful Kidney Transplantation’”

    American Journal of Transplantation 7, no. 7 (July 2007): 1683-1688. This follow-up identifies the wider operative team and records Richard's recurrent glomerulonephritis and death from renal failure. It draws on participants and family members and also demonstrates how a later commemorative painting altered details of the operating-room scene.

  8. Thomas E. Starzl and Clyde Barker, “The Origin of Clinical Organ Transplantation Revisited”

    JAMA 301, no. 19 (2009): 2041-2043. A retrospective by two transplantation surgeons that places the identical-twin operation within the 1959-1963 transition through irradiation and drug immunosuppression. It is especially useful for showing why later genetically nonidentical cases answered a different question.

  9. Joseph E. Murray, “The First Successful Organ Transplants in Man”

    Nobel Lecture, Karolinska Institutet, 8 December 1990. Murray's retrospective account explains the Brigham renal programme, dialysis, surgical research, and institutional contributors. It is first-person testimony produced thirty-six years after the Herrick operation and should not be mistaken for a contemporaneous transcript.

  10. Nobel Assembly at the Karolinska Institute, “The Nobel Prize in Physiology or Medicine 1990: Press Release”

    The official award record gives the joint prize to Joseph E. Murray and E. Donnall Thomas for discoveries concerning organ and cell transplantation. It supports the award and its stated scope, not a claim that the 1954 operation was the work of one person.