Literature DB >> 30964601

Continued administration of pembrolizumab for adenocarcinoma of the lung after the onset of fulminant type 1 diabetes mellitus as an immune-related adverse effect: A case report.

Ryuya Edahiro1, Mikako Ishijima1, Hiroyuki Kurebe1, Kohei Nishida1, Takeshi Uenami1, Masaki Kanazu1, Yuki Akazawa1, Yukihiro Yano1, Masahide Mori1.   

Abstract

A 61-year-old woman with stage IVA lung adenocarcinoma exhibited high PD-L1 expression. Pembrolizumab was administered as second-line therapy. She developed destructive thyroiditis and her thyroid function started to decline during the administration of three to five courses. She was subsequently diagnosed with fulminant type 1 diabetes mellitus and ketoacidosis during the eighth course and insulin treatment was initiated. Pembrolizumab remained effective and was continued for 21 courses, even after the onset of diabetes mellitus. Immune-checkpoint inhibitor treatment can be continued with hormone replacement even after the development of type 1 diabetes mellitus as an immune-related adverse event.
© 2019 The Authors. Thoracic Cancer published by China Lung Oncology Group and John Wiley & Sons Australia, Ltd.

Entities:  

Keywords:  Immune-checkpoint inhibitor; ketoacidosis; non-small cell lung cancer; thyroiditis; type 1 diabetes mellitus

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Year:  2019        PMID: 30964601      PMCID: PMC6500988          DOI: 10.1111/1759-7714.13065

Source DB:  PubMed          Journal:  Thorac Cancer        ISSN: 1759-7706            Impact factor:   3.500


Background

Immune‐checkpoint inhibitors (ICIs) are effective for treating metastatic non‐small cell lung cancer (NSCLC) lacking sensitizing EGFR or ALK mutations.1 The effectiveness of pembrolizumab as first‐line or further therapy has been shown, particularly for NSCLC with high expression levels of PD‐L1.2, 3 ICI therapy induces various immune‐related adverse effects (irAE), including type 1 diabetes mellitus (T1DM), which is relatively infrequent but difficult to treat.4, 5 Several case reports on the occurrence of T1DM as an irAE in melanoma and NSCLC patients have been published. However, the clinical course of the primary disease after the onset of T1DM resulting from ICI therapy is not well known. We report a case of an NSCLC patient who developed fulminant T1DM and ketoacidosis following treatment with pembrolizumab who achieved partial remission that was maintained by the continued administration of pembrolizumab with insulin treatment.

Case report

A 61‐year‐old female former smoker with a smoking index of 17.5 pack‐years and underlying chronic obstructive pulmonary disease, sleep apnea syndrome, and hyperlipidemia, was diagnosed with stage IVA of cT2bN1M1a (PLE) lung adenocarcinoma of the left upper lung lobe without EGFR mutations or ALK fusion (Fig 1 a,d). The PD‐L1 tumor proportion score was > 90%.
Figure 1

(a–c) Chest roentgenography and (d–f) computed tomography. (a,d) The primary tumor was observed in the left upper lobe before the initiation of pembrolizumab treatment. (b,e) At the onset of fulminant type 1 diabetes mellitus (T1DM) after the eighth course, the mass had reduced. (c,f) Continued pembrolizumab treatment further reduced the size of the primary lesion after the 18th course.

(a–c) Chest roentgenography and (d–f) computed tomography. (a,d) The primary tumor was observed in the left upper lobe before the initiation of pembrolizumab treatment. (b,e) At the onset of fulminant type 1 diabetes mellitus (T1DM) after the eighth course, the mass had reduced. (c,f) Continued pembrolizumab treatment further reduced the size of the primary lesion after the 18th course. She was treated with three courses of systemic chemotherapy consisting of cisplatin and pemetrexed as a first‐line treatment, which resulted in the growth of the tumor. Three months later, pembrolizumab (200 mg/body every 3 weeks) was started as a second‐line treatment. She developed destructive thyroiditis before the third course of pembrolizumab, with her free T3 level increasing to 7.2 pg./mL and her thyroid stimulating hormone (TSH) level decreasing to 0.029 μIU/mL. At this time, she exhibited no objective symptoms; therefore pembrolizumab was continued. Before administration of the fifth course, thyroid hormone treatment was initiated because her thyroid function had begun to decline and her TSH level had increased to 46.6 μIU/mL (Fig 2).
Figure 2

Free triiodothyronine (FT3), free thyroxine (FT4), and thyroid‐stimulating hormone (TSH) levels during pembrolizumab treatment. Thyroid hormone replacement therapy was initiated at the administration of the fifth course. FT3 (pg/mL), FT4 (ng/dL), TSH (μIU/mL)

Free triiodothyronine (FT3), free thyroxine (FT4), and thyroid‐stimulating hormone (TSH) levels during pembrolizumab treatment. Thyroid hormone replacement therapy was initiated at the administration of the fifth course. FT3 (pg/mL), FT4 (ng/dL), TSH (μIU/mL) Subsequently, she experienced vomiting, general malaise, and thirst from day 8 of the eighth course. She was urgently hospitalized two days later. At admission, her blood glucose level was markedly high (572 mg/dL), her hemoglobin A1c (HbA1c) level was 8.4%, her blood and urinary C‐peptide levels were remarkably low, and a urinary ketone body test was positive (Table 1). She was diagnosed with fulminant type 1 diabetes mellitus (T1DM) with ketoacidosis. After two days of fluid and electrolyte compensation and insulin therapy, her blood glucose level was well controlled and her ketoacidosis improved. Thereafter, insulin treatment for T1DM was continued (Fig 3). An anti‐glutamic acid decarboxylase (GAD) antibody test, which was performed at a later time point, was negative. She did not develop any other irAEs.
Table 1

Laboratory data on admission

Cell blood countArterial blood gas analysis (room air)
WBC13 800/μLpH7.182
RBC4.07×106/μLPaO2 81.7mmHg
Hb13.1g/dLPaCO2 19.2mmHg
Plt20.2×104/μLHCO3 6.9mmol/L
Base excess−20.4mmol/L
Biochemistry
AST18U/LUrinalysis
ALT14U/LSpecific gravity1.025
ALP230U/LProtein(1+)
T‐Bil0.4mg/dLGlucose(4+)
LDH266U/LKetone bodies(3+)
TP5.9g/dLOccult blood(−)
AMY142U/L
Cre0.97mg/dLUrine CPR1.2μg/day
Na129mEq/L
K3.8mEq/L
Cl88.6mEq/L
CRP0.91mg/dL
Glucose572mg/dL
HbA1c8.4%
CPR0.1ng/mL
Ketone body fraction
Total ketone body level375μmol/L
Acetoacetate107μmol/L
3‐hydroxybutric acid268μmol/L
Anti‐GAD antibodies< 5.0U/mL
TSH0.19μIU/mL
FT3 1.34pg/mL
FT4 1.70ng/mL

AMY, amylase; ALP, alkaline phosphatase; ALT, alanine aminotransferase; AST, aspartate aminotransferase; CPR, C‐peptide immunoreactivity; Cre, creatinine; CRP, C‐reactive protein; FT3, free triiodothyronine; FT4, free thyroxine; GAD, glutamic acid decarboxylase; Hb, hemoglobin; HbA1c, hemoglobin A1c; Ht, hematocrit; LDH, lactate dehydrogenase; Plt, platelets; RBC, red blood cell; T‐Bil, total bilirubin; TP, total protein; TSH, thyroid stimulating hormone; WBC, white blood cell; γ‐GTP, γ‐glutamyl transpeptidase.

Figure 3

Blood glucose and hemoglobin A1c (HbA1c) levels during pembrolizumab treatment. Urinalysis of glucose and ketone bodies are also shown. The administration of the ninth course was delayed for seven days as a result of the onset of fulminant type 1 diabetes mellitus (T1DM), and the 12th course was delayed for 35 days because of acute exacerbation of chronic obstructive pulmonary disease.

Laboratory data on admission AMY, amylase; ALP, alkaline phosphatase; ALT, alanine aminotransferase; AST, aspartate aminotransferase; CPR, C‐peptide immunoreactivity; Cre, creatinine; CRP, C‐reactive protein; FT3, free triiodothyronine; FT4, free thyroxine; GAD, glutamic acid decarboxylase; Hb, hemoglobin; HbA1c, hemoglobin A1c; Ht, hematocrit; LDH, lactate dehydrogenase; Plt, platelets; RBC, red blood cell; T‐Bil, total bilirubin; TP, total protein; TSH, thyroid stimulating hormone; WBC, white blood cell; γ‐GTP, γ‐glutamyl transpeptidase. Blood glucose and hemoglobin A1c (HbA1c) levels during pembrolizumab treatment. Urinalysis of glucose and ketone bodies are also shown. The administration of the ninth course was delayed for seven days as a result of the onset of fulminant type 1 diabetes mellitus (T1DM), and the 12th course was delayed for 35 days because of acute exacerbation of chronic obstructive pulmonary disease. Interestingly, at the onset of T1DM, the mass in the left upper lobe decreased (Fig 1b,e). The continued administration of pembrolizumab, even after the onset of T1DM, further reduced the size of the primary lesion (Fig 1c,f). However, after 21 courses of pembrolizumab, the primary lesion alone showed slight enlargement (within the range of stable disease). The administration of pembrolizumab was interrupted and radiotherapy was performed for local control of the primary tumor.

Discussion

Various irAEs are well known to occur in patients undergoing ICI therapy. T1DM is a relatively rare irAE, accounting for only 0.9% by nivolumab and 0.2% by pembrolizumab.5, 6 Cases in which ICI treatment leads to diabetic ketoacidosis are even less frequent. The median time to the onset of T1DM is reported to be 4.4 months; however, the time to onset ranges from 7 days to 12 months in reported cases.5, 6 Thus, it is difficult to predict the timing of the onset of T1DM. In addition, patients with T1DM induced by ICIs are often negative for pancreatic islet‐related autoantibodies (such as anti‐GAD antibody), and the disease state is not the same as general autoimmune T1DM.7 The diagnosis and treatment of T1DM as an irAE is the same as for general T1DM. In this case, the diagnosis itself was relatively easy, and we could manage the acute phase of fulminant T1DM and ketoacidosis with sufficient fluid supply, electrolyte correction, and the administration of insulin. Generally, many irAEs can be managed by discontinuing the ICIs or with the use of steroids; these treatments rarely improve endocrine function in cases of hypothyroidism or T1DM.8, 9 In this case, we did not use steroids as it was irreversible and the condition was manageable with insulin therapy. Haratani et al. reported that the clinical effect of ICIs may be higher in patients who develop irAEs.10 However, T1DM did not occur as an irAE in their study, thus the association of T1DM as an irAE with ICI efficacy could not be investigated. Cases of hypothyroidism and T1DM resulting from ICI therapy can be managed with hormone replacement. As in the present case, ICI treatment can be continued after the onset of irAEs when the tumor shrinkage effect induced by ICI therapy is maintained and irAEs are manageable. We present the case of a patient with NSCLC who developed fulminant T1DM and thyroid dysfunction as an irAE, but in whom tumor shrinkage was maintained with the continuation of pembrolizumab and the initiation of insulin therapy and thyroid hormone replacement. The further accumulation of cases is necessary to understand the clinical course and prognosis of T1DM as an irAE.
  10 in total

1.  A case report of insulin-dependent diabetes as immune-related toxicity of pembrolizumab: presentation, management and outcome.

Authors:  Elizabeth Hansen; Deepak Sahasrabudhe; Lynn Sievert
Journal:  Cancer Immunol Immunother       Date:  2016-04-11       Impact factor: 6.968

2.  Glucocorticoids did not reverse type 1 diabetes mellitus secondary to pembrolizumab in a patient with metastatic melanoma.

Authors:  Jasna Aleksova; Peter K H Lau; Georgia Soldatos; Grant McArthur
Journal:  BMJ Case Rep       Date:  2016-11-23

3.  Pembrolizumab versus docetaxel for previously treated, PD-L1-positive, advanced non-small-cell lung cancer (KEYNOTE-010): a randomised controlled trial.

Authors:  Roy S Herbst; Paul Baas; Dong-Wan Kim; Enriqueta Felip; José L Pérez-Gracia; Ji-Youn Han; Julian Molina; Joo-Hang Kim; Catherine Dubos Arvis; Myung-Ju Ahn; Margarita Majem; Mary J Fidler; Gilberto de Castro; Marcelo Garrido; Gregory M Lubiniecki; Yue Shentu; Ellie Im; Marisa Dolled-Filhart; Edward B Garon
Journal:  Lancet       Date:  2015-12-19       Impact factor: 79.321

4.  A case of pembrolizumab-induced type-1 diabetes mellitus and discussion of immune checkpoint inhibitor-induced type 1 diabetes.

Authors:  Young Kwang Chae; Lauren Chiec; Nisha Mohindra; Ryan Gentzler; Jyoti Patel; Francis Giles
Journal:  Cancer Immunol Immunother       Date:  2016-10-19       Impact factor: 6.968

Review 5.  Immune Checkpoint Inhibitors for Patients With Advanced Non-Small-Cell Lung Cancer: A Systematic Review.

Authors:  Peter M Ellis; Emily T Vella; Yee C Ung
Journal:  Clin Lung Cancer       Date:  2017-02-16       Impact factor: 4.785

6.  Pembrolizumab versus Chemotherapy for PD-L1-Positive Non-Small-Cell Lung Cancer.

Authors:  Martin Reck; Delvys Rodríguez-Abreu; Andrew G Robinson; Rina Hui; Tibor Csőszi; Andrea Fülöp; Maya Gottfried; Nir Peled; Ali Tafreshi; Sinead Cuffe; Mary O'Brien; Suman Rao; Katsuyuki Hotta; Melanie A Leiby; Gregory M Lubiniecki; Yue Shentu; Reshma Rangwala; Julie R Brahmer
Journal:  N Engl J Med       Date:  2016-10-08       Impact factor: 91.245

Review 7.  Endocrine side effects of cancer immunotherapy.

Authors:  Priscilla Cukier; Fernando C Santini; Mariana Scaranti; Ana O Hoff
Journal:  Endocr Relat Cancer       Date:  2017-10-12       Impact factor: 5.678

8.  Incidence of Endocrine Dysfunction Following the Use of Different Immune Checkpoint Inhibitor Regimens: A Systematic Review and Meta-analysis.

Authors:  Romualdo Barroso-Sousa; William T Barry; Ana C Garrido-Castro; F Stephen Hodi; Le Min; Ian E Krop; Sara M Tolaney
Journal:  JAMA Oncol       Date:  2018-02-01       Impact factor: 31.777

9.  Fulminant type 1 diabetes mellitus with anti-programmed cell death-1 therapy.

Authors:  Masahide Okamoto; Mitsuhiro Okamoto; Koro Gotoh; Takayuki Masaki; Yoshinori Ozeki; Hisae Ando; Manabu Anai; Asami Sato; Yuichi Yoshida; So Ueda; Tetsuya Kakuma; Hirotaka Shibata
Journal:  J Diabetes Investig       Date:  2016-05-31       Impact factor: 4.232

10.  Association of Immune-Related Adverse Events With Nivolumab Efficacy in Non-Small-Cell Lung Cancer.

Authors:  Koji Haratani; Hidetoshi Hayashi; Yasutaka Chiba; Keita Kudo; Kimio Yonesaka; Ryoji Kato; Hiroyasu Kaneda; Yoshikazu Hasegawa; Kaoru Tanaka; Masayuki Takeda; Kazuhiko Nakagawa
Journal:  JAMA Oncol       Date:  2018-03-01       Impact factor: 31.777

  10 in total
  5 in total

1.  Anti PD-1 monoclonal antibody induced autoimmune diabetes mellitus: a case report and brief review.

Authors:  Wei Li; Hao Wang; Bin Chen; Sha Zhao; Xiaoshen Zhang; Keyi Jia; Juan Deng; Yayi He; Caicun Zhou
Journal:  Transl Lung Cancer Res       Date:  2020-04

2.  Mapping endocrine toxicity spectrum of immune checkpoint inhibitors: a disproportionality analysis using the WHO adverse drug reaction database, VigiBase.

Authors:  Xuefeng Bai; Xiahong Lin; Kainan Zheng; Xiaoyu Chen; Xiaohong Wu; Yinqiong Huang; Yong Zhuang
Journal:  Endocrine       Date:  2020-06-07       Impact factor: 3.633

3.  PD-1 inhibitor-associated type 1 diabetes: A case report and systematic review.

Authors:  Cuiping Lin; Xuan Li; Yu Qiu; Zheng Chen; Jianping Liu
Journal:  Front Public Health       Date:  2022-08-05

4.  The Diagnosis and Management of Endocrine Side Effects of Immune Checkpoint Inhibitors.

Authors:  Knut Mai; Martin Fassnacht; Dagmar Führer-Sakel; Jürgen B Honegger; Matthias M Weber; Matthias Kroiss
Journal:  Dtsch Arztebl Int       Date:  2021-06-11       Impact factor: 5.594

5.  Nivolumab-induced autoimmune diabetes mellitus and hypothyroidism in a patient with rectal neuroendocrine tumor.

Authors:  Waqas Haque; Shabina R Ahmed; Mihail Zilbermint
Journal:  J Community Hosp Intern Med Perspect       Date:  2020-08-02
  5 in total

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