Electrochemical Biosensors for Hormone Detection: Advances and Trends—An Update Since 2010
Abstract
1. Introduction
| Hormone | Hormone Class | Primary Site of Production | Main Physiological Functions | Major Disorders Associated with Dysregulation | Typical Biological Samples | Typical Physiological Concentration * | Ref. |
|---|---|---|---|---|---|---|---|
| CORT | Steroid hormone (glucocorticoid) | Zona fasciculata of the adrenal cortex | Regulation of glucose (Glc) metabolism, modulation of immune and inflammatory responses, maintenance of blood pressure, adaptation to physiological stress | Cushing’s syndrome (hypercortisolism), Addison’s disease (adrenal insufficiency), metabolic syndrome | Serum, saliva, urine | Serum: 45–227 ng/mL (morning) and 17–141 ng/mL (evening). Saliva: 0.1–12 ng/mL (morning), 0.5–2 ng/mL (evening), and 2.2–4.1 ng/mL (night). Urine: 21–150 μg pe die | [47,48,49,50,51,52,53,54,55,56,57,58] |
| Estrogens (mainly 17β-estradiol) | Steroid hormones | Ovaries (granulosa cells), placenta during pregnancy, peripheral aromatization in adipose tissue | Regulation of female reproductive cycle, endometrial proliferation, development of secondary sexual characteristics, bone metabolism, cardiovascular protection | Hypogonadism, infertility, osteoporosis, estrogen-dependent cancers (breast and endometrial) | Serum, saliva, urine | Estradiol Early follicular phase: 90–180 pM Pre-ovulatory phase: 700–1500 pM Luteal phase: 280–1000 pM Post-menopausal: <80 pM | [59,60,61,62,63,64,65,66,67,68] |
| P4 | Steroid hormone | Corpus luteum, placenta, adrenal glands | Preparation of endometrium for implantation, maintenance of pregnancy, regulation of menstrual cycle, modulation of uterine contractility | Luteal phase deficiency, infertility, menstrual disorders, recurrent pregnancy loss | Serum, saliva | Follicular phase: <5000 pM Luteal phase: 20,000–100,000 pM Just before menstruation: <10,000 pM | [68,69,70,71,72,73] |
| TSH | Glycoprotein hormone | Anterior pituitary (adenohypophysis) | Regulation of thyroid hormone synthesis and release (T3 and T4); stimulation of thyroid gland growth and activity | Primary hypothyroidism, hyperthyroidism, pituitary disorders | Serum | ~0.4–4.0 mIU/L | [74,75,76,77,78] |
| T3 | Iodinated thyroid hormone | Thyroid gland and peripheral conversion of T4 | Regulation of basal metabolic rate, thermogenesis, cardiovascular function, and neurological development | Hyperthyroidism, hypothyroidism | Serum | Total T3: ~80–200 ng/dL | [79,80,81,82,83] |
| T4 | Iodinated thyroid hormone | Thyroid gland (follicular cells) | Precursor of T3; regulation of metabolism, growth, and development | Hyperthyroidism, hypothyroidism | Serum | Total T4: ~5–12 µg/dL | [83,84,85,86,87] |
| PTH | Polypeptide hormone | Parathyroid glands (chief cells) | Regulation of calcium and phosphate homeostasis: increased bone resorption, increased renal calcium reabsorption, decreased phosphate reabsorption, activation of vitamin D metabolism | Hyperparathyroidism, hypoparathyroidism, osteoporosis, calcium metabolism disorders | Serum | ~10–65 pg/mL | [88,89,90,91,92,93,94] |
| PRL | Polypeptide hormone | Anterior pituitary (lactotroph cells) | Stimulation and maintenance of lactation, development of mammary glands, modulation of reproductive endocrine axis | Hyperprolactinemia, prolactinoma, infertility, galactorrhea | Serum | ~5–25 ng/mL | [95,96,97,98,99,100,101,102,103,104] |
| INS | Polypeptide hormone | Pancreatic β-cells (islets of Langerhans) | Regulation of Glc homeostasis by promoting Glc uptake and anabolic metabolism; inhibition of hepatic Glc production | Diabetes mellitus, insulin resistance, metabolic syndrome, obesity, insulinoma | Serum, plasma | ~2–25 µIU/mL (fasting) | [105,106,107,108,109,110,111] |
2. Electrochemical Biosensors for Hormone Detection
3. Recent Developments of Electrochemical Biosensors for Hormone Detection
3.1. Cortisol

3.2. Estrogens
3.3. Progesterone
3.4. Thyroid-Stimulating Hormone, Parathyroid Hormone, Thyroxine and Triiodothyronine
3.5. Prolactin
3.6. Insulin
4. Future Perspectives and Translational Challenges
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Coelho, R.M.; Lima, T.M.; Endlich, P.W.; Soares, P.I.; Machado, Â.R.; Dias, G.F.; Pereira, A.C.; Franco, D.L.; Ferreira, L.F. Electrochemical Biosensors for Hormone Detection: Advances and Trends—An Update Since 2010. Chemosensors 2026, 14, 132. https://doi.org/10.3390/chemosensors14060132
Coelho RM, Lima TM, Endlich PW, Soares PI, Machado ÂR, Dias GF, Pereira AC, Franco DL, Ferreira LF. Electrochemical Biosensors for Hormone Detection: Advances and Trends—An Update Since 2010. Chemosensors. 2026; 14(6):132. https://doi.org/10.3390/chemosensors14060132
Chicago/Turabian StyleCoelho, Rafael Mendes, Thaís Machado Lima, Patrick Wander Endlich, Priscila Izabela Soares, Ângelo Rafael Machado, Geycson Figueiredo Dias, Arnaldo César Pereira, Diego Leoni Franco, and Lucas Franco Ferreira. 2026. "Electrochemical Biosensors for Hormone Detection: Advances and Trends—An Update Since 2010" Chemosensors 14, no. 6: 132. https://doi.org/10.3390/chemosensors14060132
APA StyleCoelho, R. M., Lima, T. M., Endlich, P. W., Soares, P. I., Machado, Â. R., Dias, G. F., Pereira, A. C., Franco, D. L., & Ferreira, L. F. (2026). Electrochemical Biosensors for Hormone Detection: Advances and Trends—An Update Since 2010. Chemosensors, 14(6), 132. https://doi.org/10.3390/chemosensors14060132

