Immune checkpoint inhibitor associated epidermal necrosis, beyond SJS and TEN: a review of 98 cases

Eric R Bray1,2, Rachel R Lin3, Jeffrey N Li3,4

  • 1Dr. Phillip Frost Department of Dermatology and Cutaneous Surgery, University of Miami Miller School of Medicine, 1600 N.W. 10th Avenue, RMSB, Room 2023-A Miami, Miami, FL, 33136, USA. erbray@med.miami.edu.

Immune checkpoint inhibitor (ICI) therapies carry the risk of major immune-related adverse events (irAEs). Among the most severe irAEs is epidermal necrosis that may clinically mimic Stevens-Johnson syndrome (SJS) and toxic epidermal necrosis (TEN). The aim of this study was to provide a summary of the clinical and histological features of ICI-associated epidermal necrosis, with a special focus on factors associated with fatal outcomes in cases of extensive disease. A total of 98 cases, 2 new cases and 96 reported on PubMed and in the literature, of ICI-associated epidermal necrosis were assessed. Development of epidermal necrosis occurred between 1 day and 3 years after starting ICI therapy, with an average onset of 13.8 weeks for patients with limited (< 30% BSA) and 11.3 weeks for those with extensive (≥ 30% BSA) involvement, and a median onset of 5.8 weeks and 4 weeks respectively. A preceding rash was seen in 52 cases and was more common in extensive cases. Mucosal involvement was only reported in 65% of extensive cases but was significantly associated with fatal reactions. Co-administration of cytotoxic chemotherapy was associated with more extensive disease. Recovery was observed in 96% and 65% of those with limited and extensive involvement respectively and no specific therapy was associated with improved survival. Young age was significantly associated with poor outcomes in extensive disease, the average age of surviving patients was 64.5 years old versus 55.1 years old for deceased patients, p < 0.01. Both superficial perivascular and interface/lichenoid inflammatory infiltrates were commonly seen. These findings suggest that ICI-associated epidermal necrosis should be considered a distinct clinical entity from drug-induced SJS/TEN.

Related Concept Videos

Clinical Applications of Epidermal Stem Cells01:19

Clinical Applications of Epidermal Stem Cells

Epidermal stem cells (EpiSCs) are mainly located at the basal layer of the epidermis. These cells repair minor injuries of the skin and replace dead skin cells. However, EpiSCs’ cannot heal severe wounds such as major burns or those from diabetes or hereditary disorders. In such cases, culturing the epidermal stem cells from the patient is possible and has yielded successful treatment options, such as laboratory-grown skin grafts. These grafts are synthesized using a patient’s own EpiSCs...
Drug Toxicity: Allergic Reactions01:30

Drug Toxicity: Allergic Reactions

Drug-related allergies are immune-mediated responses triggered by the administration of pharmacological agents. These hypersensitivity reactions are classified based on the immune mechanisms involved. The four primary types—Type I, II, III, and IV—are mediated by different immunological pathways and exhibit distinct clinical manifestations.Type I Hypersensitivity/ IgE-Mediated Reactions: Immunoglobulin E (IgE) immediately mediates Type I hypersensitivity reactions. Upon initial exposure to a...
Hypersensitivity Reactions: Cytolytic Reactions01:01

Hypersensitivity Reactions: Cytolytic Reactions

Type II hypersensitivity involves IgG and IgM antibodies targeting cell surface antigens, leading to cell destruction. This can occur through complement activation, antibody-dependent cell-mediated cytotoxicity (ADCC), or acting as opsonins for phagocytosis. When excessive, these reactions cause significant tissue damage.Drug-induced hemolytic anemia is a common example, where drugs like penicillin or cephalosporins bind to red blood cells, forming drug-protein complexes. These complexes...
Drug toxicity: Idiosyncratic Reactions01:16

Drug toxicity: Idiosyncratic Reactions

Idiosyncratic drug reactions represent abnormal chemical responses that vary significantly among individuals, ranging from extreme sensitivity to low doses to insensitivity to high doses. These reactions often occur due to the drug's covalent binding with serum proteins, forming a foreign hapten that triggers an immunotoxicological response. The variability in drug reactions has a strong pharmacogenetic foundation, with genetic differences crucial in how individuals metabolize drugs. For...
Cytotoxic Edema: Pathophysiology01:21

Cytotoxic Edema: Pathophysiology

Cytotoxic edema is a form of cerebral edema characterized by intracellular swelling of neurons, astrocytes, and other glial cells. It develops when the mechanisms responsible for maintaining ionic gradients across the cell membrane become impaired. Under normal physiological conditions, the sodium–potassium ATPase actively transports sodium ions out of the cell and potassium ions into the cell, preserving osmotic balance and enabling electrical signaling. This pump requires a continuous supply...
Hypersensitivity Reactions: Immune-Complex Reactions01:19

Hypersensitivity Reactions: Immune-Complex Reactions

Type III hypersensitivity reactions occur when antigen–antibody complexes form and activate the complement system. Normally, these complexes help the clearance of antigens by phagocytes and red blood cells. However, when large numbers of immune complexes are present, they can deposit in tissues—particularly in the walls of blood vessels—leading to inflammation and tissue injury. These deposits trigger complement activation and neutrophil recruitment, resulting in serum sickness, a systemic...