1. Nieman LK. Molecular derangements and the diagnosis of ACTH-dependent Cushing’s syndrome. Endocr Rev. 2022; 43:852–77.

2. Park JS, Yun SJ, Lee JK, Park SY, Chin SO. Descriptive epidemiology and survival analysis of prolactinomas and Cushing’s disease in Korea. Endocrinol Metab (Seoul). 2021; 36:688–96.

3. Chin SO. For the forthcoming winning shot in the battle against Cushing disease. Endocrinol Metab (Seoul). 2024; 39:573–5.

4. Limumpornpetch P, Morgan AW, Tiganescu A, Baxter PD, Nyawira Nyaga V, Pujades-Rodriguez M, et al. The effect of endogenous Cushing syndrome on all-cause and cause-specific mortality. J Clin Endocrinol Metab. 2022; 107:2377–88.
5. Valassi E, Santos A, Yaneva M, Toth M, Strasburger CJ, Chanson P, et al. The European Registry on Cushing’s syndrome: 2-year experience. Baseline demographic and clinical characteristics. Eur J Endocrinol. 2011; 165:383–92.
6. Sharma ST, Nieman LK, Feelders RA. Comorbidities in Cushing’s disease. Pituitary. 2015; 18:188–94.
7. Reincke M, Fleseriu M. Cushing syndrome: a review. JAMA. 2023; 330:170–81.
8. Nieman LK, Biller BM, Findling JW, Newell-Price J, Savage MO, Stewart PM, et al. The diagnosis of Cushing’s syndrome: an Endocrine Society Clinical Practice Guideline. J Clin Endocrinol Metab. 2008; 93:1526–40.

9. Fleseriu M, Auchus R, Bancos I, Ben-Shlomo A, Bertherat J, Biermasz NR, et al. Consensus on diagnosis and management of Cushing’s disease: a guideline update. Lancet Diabetes Endocrinol. 2021; 9:847–75.

10. Hur KY, Kim JH, Kim BJ, Kim MS, Lee EJ, Kim SW. Clinical guidelines for the diagnosis and treatment of Cushing’s disease in Korea. Endocrinol Metab (Seoul). 2015; 30:7–18.
11. Takahashi Y, Tahara S, Nishiyama M, Makita N, Mizuno H, Yamada M, et al. Clinical practice guidelines for the diagnosis and management of hypothalamic-pituitary dysfunction, congenital arginine vasopressin resistance, and related disorders: 2023 edition by the Japan Endocrine Society. Nihon Naibunpi Gakkai Zasshi. 2023; 99(S. July):1–171. (Japanese).
12. Motomura Y, Urai S, Bando H, Yamamoto M, Suzuki M, Yamamoto N, et al. Diagnostic dilemma in Cushing’s syndrome: discrepancy between patient-reported and physician-assessed manifestations. Endocrine. 2024; 86:417–27.

13. Stratakis CA. Skin manifestations of Cushing’s syndrome. Rev Endocr Metab Disord. 2016; 17:283–6.

14. Lightman SL, Birnie MT, Conway-Campbell BL. Dynamics of ACTH and cortisol secretion and implications for disease. Endocr Rev. 2020; 41:bnaa002..

15. Wright K, van Rossum EFC, Zan E, Werner N, Harris A, Feelders RA, et al. Emerging diagnostic methods and imaging modalities in Cushing’s syndrome. Front Endocrinol (Lausanne). 2023; 14:1230447.
16. Bertagna X, Guignat L, Groussin L, Bertherat J. Cushing’s disease. Best Pract Res Clin Endocrinol Metab. 2009; 23:607–23.
17. Hong AR, Kim JH, Hong ES, Kim IK, Park KS, Ahn CH, et al. Limited diagnostic utility of plasma adrenocorticotropic hormone for differentiation between adrenal Cushing syndrome and Cushing disease. Endocrinol Metab (Seoul). 2015; 30:297–304.

18. Hwang YC, Chung JH, Min YK, Lee MS, Lee MK, Kim KW. Comparisons between macroadenomas and microadenomas in Cushing’s disease: characteristics of hormone secretion and clinical outcomes. J Korean Med Sci. 2009; 24:46–51.
19. Casals G, Hanzu FA. Cortisol measurements in Cushing’s syndrome: immunoassay or mass spectrometry? Ann Lab Med. 2020; 40:285–96.

20. Clarke SA, Eng PC, Comninos AN, Lazarus K, Choudhury S, Tsang C, et al. Current challenges and future directions in the assessment of glucocorticoid status. Endocr Rev. 2024; 45:795–817.
21. Guarnotta V, Amato MC, Pivonello R, Arnaldi G, Ciresi A, Trementino L, et al. The degree of urinary hypercortisolism is not correlated with the severity of Cushing’s syndrome. Endocrine. 2017; 55:564–72.

22. Loriaux DL. Diagnosis and differential diagnosis of Cushing’s syndrome. N Engl J Med. 2017; 376:1451–9.
23. Flowers KC, Shipman KE. Pitfalls in the diagnosis and management of hypercortisolism (Cushing syndrome) in humans; a review of the laboratory medicine perspective. Diagnostics (Basel). 2023; 13:1415.

24. Ahn SH, Kim JH, Baek SH, Kim H, Cho YY, Suh S, et al. Characteristics of adrenal incidentalomas in a large, prospective computed tomography-based multicenter study: the COAR Study in Korea. Yonsei Med J. 2018; 59:501–10.
25. Shimatsu A, Biller BM, Fleseriu M, Pivonello R, Lee EJ, Leelawattana R, et al. Osilodrostat treatment in patients with Cushing’s disease of Asian or non-Asian origin: a pooled analysis of two Phase III randomized trials (LINC 3 and LINC 4). Endocr J. 2024; 71:1103–23.

26. Nakane T, Kuwayama A, Watanabe M, Takahashi T, Kato T, Ichihara K, et al. Long term results of transsphenoidal adenomectomy in patients with Cushing’s disease. Neurosurgery. 1987; 21:218–22.
27. Kim JH, Shin CS, Paek SH, Jung HW, Kim SW, Kim SY. Recurrence of Cushing’s disease after primary transsphenoidal surgery in a university hospital in Korea. Endocr J. 2012; 59:881–8.

28. Parksook WW, Laichuthai N, Sunthornyothin S. Clinical characteristics and treatment outcomes in endogenous Cushing’s syndrome: a 15-year experience from Thailand. Case Rep Endocrinol. 2020; 2020:2946868.

29. Vining RF, McGinley RA, Maksvytis JJ, Ho KY. Salivary cortisol: a better measure of adrenal cortical function than serum cortisol. Ann Clin Biochem. 1983; 20(Pt 6):329–35.
30. Gatti R, Antonelli G, Prearo M, Spinella P, Cappellin E, De Palo EF. Cortisol assays and diagnostic laboratory procedures in human biological fluids. Clin Biochem. 2009; 42:1205–17.

31. Choi MH. Clinical and technical aspects in free cortisol measurement. Endocrinol Metab (Seoul). 2022; 37:599–607.

32. Vining RF, McGinley RA. The measurement of hormones in saliva: possibilities and pitfalls. J Steroid Biochem. 1987; 27:81–94.

33. Carroll T, Raff H, Findling JW. Late-night salivary cortisol for the diagnosis of Cushing syndrome: a meta-analysis. Endocr Pract. 2009; 15:335–42.
34. Lin DC, Tsai PS, Lin YC. Midnight salivary cortisol for the diagnosis of Cushing’s syndrome in a Chinese population. Singapore Med J. 2019; 60:359–63.

35. Sakihara S, Kageyama K, Oki Y, Doi M, Iwasaki Y, Takayasu S, et al. Evaluation of plasma, salivary, and urinary cortisol levels for diagnosis of Cushing’s syndrome. Endocr J. 2010; 57:331–7.
36. Yorke E, Atiase Y, Akpalu J, Sarfo-Kantanka O. Screening for Cushing syndrome at the primary care level: what every general practitioner must know. Int J Endocrinol. 2017; 2017:1547358.
37. Martinerie L, Bouligand J, North MO, Bertherat J, Assie G, Espiard S. Consensus statement by the French Society of Endocrinology (SFE) and French Society of Pediatric Endocrinology & Diabetology (SFEDP) for the diagnosis of Cushing’s syndrome: genetics of Cushing’s syndrome. Ann Endocrinol (Paris). 2024; 85:284–93.

38. Debono M, Bradburn M, Bull M, Harrison B, Ross RJ, Newell-Price J. Cortisol as a marker for increased mortality in patients with incidental adrenocortical adenomas. J Clin Endocrinol Metab. 2014; 99:4462–70.

39. Mansour N, Bruedgam D, Heinrich D, Dischinger U, Reisch N, Volter F, et al. Mild autonomous cortisol secretion leads to reduced volumetric BMD at lumbar spine in patients with primary aldosteronism. Front Endocrinol (Lausanne). 2024; 15:1521680.
40. Hong AR, Kim JH, Park KS, Kim KY, Lee JH, Kong SH, et al. Optimal follow-up strategies for adrenal incidentalomas: reappraisal of the 2016 ESE-ENSAT guidelines in real clinical practice. Eur J Endocrinol. 2017; 177:475–83.

41. Kageyama K, Oki Y, Sakihara S, Nigawara T, Terui K, Suda T. Evaluation of the diagnostic criteria for Cushing’s disease in Japan. Endocr J. 2013; 60:127–35.
42. Oki Y, Hashimoto K, Hirata Y, Iwasaki Y, Nigawara T, Doi M, et al. Development and validation of a 0.5 mg dexamethasone suppression test as an initial screening test for the diagnosis of ACTH-dependent Cushing’s syndrome. Endocr J. 2009; 56:897–904.

43. Mondin A, Barbot M, Voltan G, Tizianel I, Vedolin CK, Mazzeo P, et al. Second-line tests in the differential diagnosis of neoplastic and non-neoplastic hypercortisolism: a systematic review and meta-analysis. J Endocrinol Invest. 2023; 46:1947–59.

44. Moro M, Putignano P, Losa M, Invitti C, Maraschini C, Cavagnini F. The desmopressin test in the differential diagnosis between Cushing’s disease and pseudo-Cushing states. J Clin Endocrinol Metab. 2000; 85:3569–74.

45. Shichi H, Fukuoka H, Kanzawa M, Yamamoto M, Yamamoto N, Suzuki M, et al. Responsiveness to DDAVP in Cushing’s disease is associated with USP8 mutations through enhancing AVPR1B promoter activity. Pituitary. 2022; 25:496–507.

46. Giampietro RR, Cabral MV, Pereira EG, Machado MC, Vilar L, Nunes-Nogueira VD. Accuracy of the 10 μg desmopressin test for differential diagnosis of Cushing syndrome: a systematic review and meta-analysis. Front Endocrinol (Lausanne). 2024; 15:1332120.

47. Losa M, Mortini P, Dylgjeri S, Barzaghi R, Franzin A, Mandelli C, et al. Desmopressin stimulation test before and after pituitary surgery in patients with Cushing’s disease. Clin Endocrinol (Oxf). 2001; 55:61–8.
48. Pinelli S, Barbot M, Scaroni C, Ceccato F. Second-line tests in the diagnosis of adrenocorticotropic hormone-dependent hypercortisolism. Ann Lab Med. 2021; 41:521–31.

49. Ceccato F, Di Dalmazi G. Shortage of hCRH for the diagnosis of endogenous CS: the end of an era or the beginning of a new journey? J Endocrinol Invest. 2023; 46:2189–91.

50. Detomas M, Ritzel K, Nasi-Kordhishti I, Wolfsberger S, Quinkler M, Losa M, et al. Outcome of CRH stimulation test and overnight 8 mg dexamethasone suppression test in 469 patients with ACTH-dependent Cushing’s syndrome. Front Endocrinol (Lausanne). 2022; 13:955945.

51. Savas M, Mehta S, Agrawal N, van Rossum EF, Feelders RA. Approach to the patient: diagnosis of Cushing syndrome. J Clin Endocrinol Metab. 2022; 107:3162–74.
52. Nieman LK, Castinetti F, Newell-Price J, Valassi E, Drouin J, Takahashi Y, et al. Cushing syndrome. Nat Rev Dis Primers. 2025; 11:4.

53. Elamin MB, Murad MH, Mullan R, Erickson D, Harris K, Nadeem S, et al. Accuracy of diagnostic tests for Cushing’s syndrome: a systematic review and metaanalyses. J Clin Endocrinol Metab. 2008; 93:1553–62.

54. Bertherat J. CRH-receptor molecular imaging reveals the intimacy of corticotroph adenomas. J Clin Endocrinol Metab. 2021; 106:e1902–4.

55. Carton T, Mathieu E, Wolff F, Bouziotis J, Corvilain B, Driessens N. Two-day low-dose dexamethasone suppression test more accurate than overnight 1-mg in women taking oral contraceptives. Endocrinol Diabetes Metab. 2021; 4:e00255.

56. Lacroix A, Feelders RA, Stratakis CA, Nieman LK. Cushing’s syndrome. Lancet. 2015; 386:913–27.

57. Barbot M, Trementino L, Zilio M, Ceccato F, Albiger N, Daniele A, et al. Second-line tests in the differential diagnosis of ACTH-dependent Cushing’s syndrome. Pituitary. 2016; 19:488–95.
58. Aytug S, Laws ER, Vance ML. Assessment of the utility of the high-dose dexamethasone suppression test in confirming the diagnosis of Cushing disease. Endocr Pract. 2012; 18:152–7.
59. Lim JS, Lee SK, Kim SH, Lee EJ, Kim SH. Intraoperative multiple-staged resection and tumor tissue identification using frozen sections provide the best result for the accurate localization and complete resection of tumors in Cushing’s disease. Endocrine. 2011; 40:452–61.

60. Fukuhara N, Inoshita N, Yamaguchi-Okada M, Tatsushima K, Takeshita A, Ito J, et al. Outcomes of three-Tesla magnetic resonance imaging for the identification of pituitary adenoma in patients with Cushing’s disease. Endocr J. 2019; 66:259–64.

61. Grober Y, Grober H, Wintermark M, Jane JA, Oldfield EH. Comparison of MRI techniques for detecting microadenomas in Cushing’s disease. J Neurosurg. 2018; 128:1051–7.
62. Castle-Kirszbaum M, Amukotuwa S, Fuller P, Goldschlager T, Gonzalvo A, Kam J, et al. MRI for Cushing disease: a systematic review. AJNR Am J Neuroradiol. 2023; 44:311–6.
63. Kim K, Kim DK, Moon JH, Kim EH, Kim SH, Ku CR, et al. Dexamethasone suppression for 18F-FDG PET/CT to localize ACTH-secreting pituitary tumors. Cancer Imaging. 2023; 23:85.

64. Valizadeh M, Rahmani F, Nikoohemmat M, Ramezani Ahmadi A, Hosseinpanah F, Niroomand M, et al. Diagnostic accuracy of the desmopressin stimulation test in the comprehensive assessment of ACTH-dependent Cushing’s syndrome: a comparative analysis with BIPSS and TSS. Endocr Res. 2024; 49:232–42.

65. Zampetti B, Grossrubatscher E, Dalino Ciaramella P, Boccardi E, Loli P. Bilateral inferior petrosal sinus sampling. Endocr Connect. 2016; 5:R12–25.
66. Valizadeh M, Abiri B, Hosseinpanah F, Grossman A. Bilateral inferior petrosal sinus sampling in the differential diagnosis of ACTH-dependent Cushing’s syndrome: a reappraisal. J Intern Med. 2024; 296:2–23.
67. Mulligan GB, Faiman C, Gupta M, Kennedy L, Hatipoglu B, Hui F, et al. Prolactin measurement during inferior petrosal sinus sampling improves the localization of pituitary adenomas in Cushing’s disease. Clin Endocrinol (Oxf). 2012; 77:268–74.
68. Ishida A, Asakuno K, Shiramizu H, Yoshimoto H, Nakase K, Kato M, et al. Revalidation of inferior petrosal sinus sampling: the latest results from a single-center experience. Endocr J. 2021; 68:1217–23.
