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Signal Amplification in the HPT Axis-Evidence for Its Existence, Location, Significance, and Molecular Mechanisms.

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The authors' code

MATLAB · 342 lines · 7.7 KB · no license

  1. clear all
  2. clc
  3. % Time unit: hour
  4. tspan = [0:10:10000];
  5. color_TRH = [75/255, 186/255, 253/255];
  6. color_TSH = [126/255, 210/255, 134/255];
  7. color_TH = [255/255, 153/255, 203/255];
  8. %% Initial condition
  9. init.TRH = 1;
  10. init.TSH = 1;
  11. init.TH = 15;
  12. init_default = init;
  13. %% -------------------------- DESIGN A run to steady state-----------------------------------------------%%
  14. % Load parameters
  15. load('Default_param_A.mat');
  16. param = param_default;
  17. % Run simulation
  18. y0 = [init.TRH, init.TSH, init.TH];
  19. [t,y] = ode15s('HPT_ode',tspan, y0, [], param); %Note: use @HPT_ode does not work for passing argument
  20. % Plot time-course
  21. figure(1)
  22. hold on
  23. plot(t,y(:,1))
  24. xlabel('Time (h)')
  25. ylabel('TRH)')
  26. figure(2)
  27. hold on
  28. plot(t,y(:,2))
  29. xlabel('Time (h)')
  30. ylabel('TSH (mIU/L)')
  31. figure(3)
  32. hold on
  33. plot(t,y(:,3))
  34. xlabel('Time (h)')
  35. ylabel('TH (pM)')
  36. % Obtain steady-state values
  37. TRHss = y(end,1);
  38. TSHss = y(end,2);
  39. THss = y(end,3);
  40. %% -------------------------- DESIGN A Sensitivity Analysis -----------------------------------------------%%
  41. param_cell = struct2cell(param_default);
  42. param_names = fieldnames(param_default);
  43. percent_change = 0.1; % for parameter change
  44. % Increasing parameter values
  45. SC_TRH_increase = [];
  46. SC_TSH_increase = [];
  47. SC_TH_increase = [];
  48. for i = 1:1:length(param_cell)
  49. param = param_default;
  50. eval(strcat('param.', param_names{i}, '=', num2str(param_cell{i}), '*(1 + percent_change);'));
  51. y0 = [init.TRH, init.TSH, init.TH];
  52. [t,y] = ode15s('HPT_ode',tspan, y0, [], param);
  53. % Plot time-course
  54. figure(1)
  55. hold on
  56. plot(t,y(:,1))
  57. xlabel('Time (h)')
  58. ylabel('TRH)')
  59. figure(2)
  60. hold on
  61. plot(t,y(:,2))
  62. xlabel('Time (h)')
  63. ylabel('TSH (mIU/L)')
  64. figure(3)
  65. hold on
  66. plot(t,y(:,3))
  67. xlabel('Time (h)')
  68. ylabel('TH (pM)')
  69. % Obtain steady-state values
  70. TRHss_increase = y(end,1);
  71. TSHss_increase = y(end,2);
  72. THss_increase = y(end,3);
  73. %Calculate sensitivity coefficient (SC)
  74. SC_TRH_increase = [SC_TRH_increase, (TRHss_increase - TRHss)/TRHss/percent_change];
  75. SC_TSH_increase = [SC_TSH_increase, (TSHss_increase - TSHss)/TSHss/percent_change];
  76. SC_TH_increase = [SC_TH_increase, (THss_increase - THss)/THss/percent_change];
  77. end
  78. % Decreasing parameter values
  79. SC_TRH_decrease = [];
  80. SC_TSH_decrease = [];
  81. SC_TH_decrease = [];
  82. for i = 1:1:length(param_cell)
  83. param = param_default;
  84. eval(strcat('param.', param_names{i}, '=', num2str(param_cell{i}), '*(1 - percent_change);'));
  85. y0 = [init.TRH, init.TSH, init.TH];
  86. [t,y] = ode15s('HPT_ode',tspan, y0, [], param);
  87. % Plot time-course
  88. figure(1)
  89. hold on
  90. plot(t,y(:,1))
  91. xlabel('Time (h)')
  92. ylabel('TRH)')
  93. figure(2)
  94. hold on
  95. plot(t,y(:,2))
  96. xlabel('Time (h)')
  97. ylabel('TSH (mIU/L)')
  98. figure(3)
  99. hold on
  100. plot(t,y(:,3))
  101. xlabel('Time (h)')
  102. ylabel('TH (pM)')
  103. % Obtain steady-state values
  104. TRHss_decrease = y(end,1);
  105. TSHss_decrease = y(end,2);
  106. THss_decrease = y(end,3);
  107. %Calculate sensitivity coefficient (SC)
  108. SC_TRH_decrease = [SC_TRH_decrease, -(TRHss_decrease - TRHss)/TRHss/percent_change];
  109. SC_TSH_decrease = [SC_TSH_decrease, -(TSHss_decrease - TSHss)/TSHss/percent_change];
  110. SC_TH_decrease = [SC_TH_decrease, -(THss_decrease - THss)/THss/percent_change];
  111. end
  112. % Averaging SC
  113. SC_TRH = (SC_TRH_increase + SC_TRH_decrease) / 2;
  114. SC_TSH = (SC_TSH_increase + SC_TSH_decrease) / 2;
  115. SC_TH = (SC_TH_increase + SC_TH_decrease) / 2;
  116. %Plot TRH SC
  117. figure(4)
  118. bar(SC_TRH, 'FaceColor', color_TRH);
  119. ylabel('SC (TRH)');
  120. xticklabels(param_names);
  121. pbaspect([3.6 1 1])
  122. ylim([-1.3,1.2]);
  123. yticks([-1 -0.5 0 0.5 1])
  124. set(gca,'Fontsize', 14);
  125. %Plot TSH SC
  126. figure(5)
  127. bar(SC_TSH, 'FaceColor', color_TSH);
  128. ylabel('SC (TSH)');
  129. xticklabels(param_names);
  130. pbaspect([3.6 1 1])
  131. ylim([-1.2,2]);
  132. yticks([-1 -0.5 0 0.5 1 2])
  133. set(gca,'Fontsize', 14);
  134. %Plot TH SC
  135. figure(6)
  136. bar(SC_TH, 'FaceColor', color_TH);
  137. ylabel('SC (TH)');
  138. xticklabels(param_names);
  139. pbaspect([3.6 1 1])
  140. ylim([-1.2,1.2]);
  141. yticks([-1 -0.5 0 0.5 1])
  142. set(gca,'Fontsize', 14);
  143. %
  144. %% -------------------------- DESIGN B run to steady state-----------------------------------------------%%
  145. % Load parameters
  146. load('Default_param_B.mat');
  147. param = param_default;
  148. % Run simulation
  149. y0 = [init.TRH, init.TSH, init.TH];
  150. [t,y] = ode15s('HPT_ode',tspan, y0, [], param); %Note: use @HPT_ode does not work for passing argument
  151. % Plot time-course
  152. figure(10)
  153. plot(t,y(:,1))
  154. xlabel('Time (h)')
  155. ylabel('TRH)')
  156. figure(20)
  157. plot(t,y(:,2))
  158. xlabel('Time (h)')
  159. ylabel('TSH (mIU/L)')
  160. figure(30)
  161. plot(t,y(:,3))
  162. xlabel('Time (h)')
  163. ylabel('TH (pM)')
  164. % Obtain steady-state values
  165. TRHss = y(end,1);
  166. TSHss = y(end,2);
  167. THss = y(end,3);
  168. %% -------------------------- DESIGN B Sensitivity Analysis -----------------------------------------------%%
  169. param_cell = struct2cell(param_default);
  170. param_names = fieldnames(param_default);
  171. percent_change = 0.1; % for parameter change
  172. % Increasing parameter values
  173. SC_TRH_increase = [];
  174. SC_TSH_increase = [];
  175. SC_TH_increase = [];
  176. for i = 1:1:length(param_cell)
  177. param = param_default;
  178. eval(strcat('param.', param_names{i}, '=', num2str(param_cell{i}), '*(1 + percent_change);'));
  179. y0 = [init.TRH, init.TSH, init.TH];
  180. [t,y] = ode15s('HPT_ode',tspan, y0, [], param);
  181. % Plot time-course
  182. figure(10)
  183. hold on
  184. plot(t,y(:,1))
  185. xlabel('Time (h)')
  186. ylabel('TRH)')
  187. figure(20)
  188. hold on
  189. plot(t,y(:,2))
  190. xlabel('Time (h)')
  191. ylabel('TSH (mIU/L)')
  192. figure(30)
  193. hold on
  194. plot(t,y(:,3))
  195. xlabel('Time (h)')
  196. ylabel('TH (pM)')
  197. % Obtain steady-state values
  198. TRHss_increase = y(end,1);
  199. TSHss_increase = y(end,2);
  200. THss_increase = y(end,3);
  201. %Calculate sensitivity coefficient (SC)
  202. SC_TRH_increase = [SC_TRH_increase, (TRHss_increase - TRHss)/TRHss/percent_change];
  203. SC_TSH_increase = [SC_TSH_increase, (TSHss_increase - TSHss)/TSHss/percent_change];
  204. SC_TH_increase = [SC_TH_increase, (THss_increase - THss)/THss/percent_change];
  205. end
  206. % Decreasing parameter values
  207. SC_TRH_decrease = [];
  208. SC_TSH_decrease = [];
  209. SC_TH_decrease = [];
  210. for i = 1:1:length(param_cell)
  211. param = param_default;
  212. eval(strcat('param.', param_names{i}, '=', num2str(param_cell{i}), '*(1 - percent_change);'));
  213. y0 = [init.TRH, init.TSH, init.TH];
  214. [t,y] = ode15s('HPT_ode',tspan, y0, [], param);
  215. % Plot time-course
  216. figure(10)
  217. hold on
  218. plot(t,y(:,1))
  219. xlabel('Time (h)')
  220. ylabel('TRH)')
  221. figure(20)
  222. hold on
  223. plot(t,y(:,2))
  224. xlabel('Time (h)')
  225. ylabel('TSH (mIU/L)')
  226. figure(30)
  227. hold on
  228. plot(t,y(:,3))
  229. xlabel('Time (h)')
  230. ylabel('TH (pM)')
  231. % Obtain steady-state values
  232. TRHss_decrease = y(end,1);
  233. TSHss_decrease = y(end,2);
  234. THss_decrease = y(end,3);
  235. %Calculate sensitivity coefficient (SC)
  236. SC_TRH_decrease = [SC_TRH_decrease, -(TRHss_decrease - TRHss)/TRHss/percent_change];
  237. SC_TSH_decrease = [SC_TSH_decrease, -(TSHss_decrease - TSHss)/TSHss/percent_change];
  238. SC_TH_decrease = [SC_TH_decrease, -(THss_decrease - THss)/THss/percent_change];
  239. end
  240. % Averaging SC
  241. SC_TRH = (SC_TRH_increase + SC_TRH_decrease) / 2;
  242. SC_TSH = (SC_TSH_increase + SC_TSH_decrease) / 2;
  243. SC_TH = (SC_TH_increase + SC_TH_decrease) / 2;
  244. %Plot TRH SC
  245. figure(40)
  246. bar(SC_TRH, 'FaceColor', color_TRH);
  247. ylabel('SC (TRH)');
  248. xticklabels(param_names);
  249. pbaspect([3.6 1 1])
  250. ylim([-1.3,1.2]);
  251. yticks([-1 -0.5 0 0.5 1])
  252. set(gca,'Fontsize', 14);
  253. %Plot TSH SC
  254. figure(50)
  255. bar(SC_TSH, 'FaceColor', color_TSH);
  256. ylabel('SC (TSH)');
  257. xticklabels(param_names);
  258. pbaspect([3.6 1 1])
  259. ylim([-1.2,1.2]);
  260. yticks([-1 -0.5 0 0.5 1])
  261. set(gca,'Fontsize', 14);
  262. %Plot TH SC
  263. figure(60)
  264. bar(SC_TH, 'FaceColor', color_TH);
  265. ylabel('SC (TH)');
  266. xticklabels(param_names);
  267. pbaspect([3.6 1 1])
  268. ylim([-1.2,1.2]);
  269. yticks([-1 -0.5 0 0.5 1])
  270. set(gca,'Fontsize', 14);
  271. %

HPT_cmd.m at commit 8b982f4, no license · at the source

Overview

Authors: Li Jing1, Sarahna A Moyd2, Qiang Zhang2
  1. Department of Toxicology and Hygienic Chemistry, School of Public Health, Capital Medical University, Beijing, China
  2. Gangarosa Department of Environmental Health, Rollins School of Public Health, Emory University, Atlanta, Georgia, USA
Institutions: Capital Medical University (China); Emory University (United States)
Journal: Acta physiologica (Oxford, England), volume 242, issue 4, article e70202
Dates: received 4 September 2025; accepted 28 January 2026; published online 20 March 2026; in print April 2026
Type: Review · Language: English
License: CC BY
Identifiers: DOI 10.1111/apha.70202 · PMID 41862191 · PMCID PMC13004654 · OpenAlex W7139944415
Open access: hybrid, a free copy (OpenAlex)
Status: code verified
Categories: human (organism), cellular / molecular (subfield)
Methods: Complexity, Smoothing, state filtering, decompositions, Spectral & time-frequency, Statistics
Keywords: negative feedback, signal amplification, thyroid hormone, TRH, TSH, ultrasensitivity
MeSH: Hypothalamo-Hypophyseal System*, Signal Transduction*, Thyroid Gland*, Thyroid Hormones*, Animals, Feedback, Physiological, Humans (* major topic)
Topic: Thyroid Disorders and Treatments (Endocrinology, Diabetes and Metabolism, Medicine), according to OpenAlex
Funding: NIEHS NIH HHS (P42ES004911, P42 ES004911); National Institute of Environmental Health Sciences (P42ES004911)
Citations: not cited yet (Europe PMC); 320 references in the paper

Abstract

Thyroid hormones (THs) are under negative feedback regulation via the hypothalamic–pituitary‐thyroid (HPT) axis. How this axis operates to keep the circulating THs within a narrow physiological range is not well understood quantitatively. Led by the design principle of robust homeostatic feedback control, here we review and synthesize the literature under a unifying theme of signal amplification in the HPT axis, providing evidence for its existence, location, functional significance, and potential molecular mechanisms. Drawing on human studies of the circulating TSH‐T4 relationship, we assert that a signal amplifier exists in the brain, where the TH feedback signal is amplified to inhibit TRH and TSH. With mathematical models we illustrate that placing the signal amplifier of the HPT feedback loop in the brain, not in the thyroid, provides an evolutionary advantage, which minimizes the disruption of operating TH levels by possible perturbations. We review the molecular neuroendocrine literature to reveal how signal amplification (ultrasensitivity) is likely achieved mechanically in the hypothalamus and anterior pituitary. We identify multiple signaling pathways in the TRH neurons, β2‐tanycytes, and thyrotropes that mediate the feedback action of THs, including transcriptional and posttranslational regulations of the synthesis, maturation, degradation, and release of TRH and TSH. Collectively, these multistep regulations amplify T3 signal, providing a high feedback loop gain for robust TH homeostatic control. The nature's design principle revealed here enhances our cross‐scale understanding of the systems biology of the HPT axis as a dynamical control system, which can promote precision thyroid medicine and risk assessment of thyroid‐disrupting chemicals.

Reproduced under the paper's license (CC BY), from the paper cited above.

Repository

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pulsatility/2025-signal-amplification-in-HPT-axis

License: none: the authors keep all their rights
State: the link answers, verified on 28 September 2026
Evidence: files inventoried
Commit: 8b982f43da213fa431b0a702c1571c82b2abdce9, 14 January 2026
Languages: MATLAB (2)
Size: 6 files, 2 scripts
Software Heritage: not archived
Found in: the text, “Functional Significance of Central Location of S”
Holds: README
Not found: license file, CITATION.cff, environment file, tests, continuous integration, documentation
Availability: 1 check, the latest on 28 September 2026: the link answers
  • 28 September 2026: the link answers
3 files

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  • 2 scripts, each with its path and the digest of its content;
  • no match between paragraphs and code yet;
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Data Availability Statement

Data sharing not applicable to this article as no datasets were generated or analysed during the current study.

Reproduced under the paper's license (CC BY), from the paper cited above.

Versions

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Version 2, 28 September 2026

  • Publisher: n/a → Wiley

Version 1, 28 September 2026: the first record

Recorded: type, language, journal, volume, issue, pages, dates, 3 authors, 6 keywords, 7 MeSH terms, 2 funders, 313 references.

Cite

This paper

Jing, L., Moyd, S. A., & Zhang, Q. (2026). Signal Amplification in the HPT Axis-Evidence for Its Existence, Location, Significance, and Molecular Mechanisms. Acta physiologica (Oxford, England), 242(4), e70202. https://doi.org/10.1111/apha.70202

BibTeX

@article{jing2026signal,
author = {Jing, Li and Moyd, Sarahna A and Zhang, Qiang},
title = {{Signal Amplification in the HPT Axis-Evidence for Its Existence, Location, Significance, and Molecular Mechanisms}},
journal = {Acta physiologica (Oxford, England)},
year = {2026},
month = apr,
volume = {242},
number = {4},
pages = {e70202},
publisher = {Wiley},
issn = {1748-1708},
doi = {10.1111/apha.70202},
url = {https://doi.org/10.1111/apha.70202},
pmid = {41862191},
pmcid = {PMC13004654}
}

RIS

TY - JOUR
AU - Jing, Li
AU - Moyd, Sarahna A
AU - Zhang, Qiang
TI - Signal Amplification in the HPT Axis-Evidence for Its Existence, Location, Significance, and Molecular Mechanisms
T2 - Acta physiologica (Oxford, England)
J2 - Acta Physiol (Oxf)
PY - 2026
DA - 2026/04/01
VL - 242
IS - 4
SP - e70202
SN - 1748-1708
PB - Wiley
DO - 10.1111/apha.70202
UR - https://doi.org/10.1111/apha.70202
LA - en
ER -

CSL-JSON

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"container-title-short": "Acta Physiol (Oxf)",
"volume": "242",
"issue": "4",
"page": "e70202",
"DOI": "10.1111/apha.70202",
"PMID": "41862191",
"PMCID": "PMC13004654",
"ISSN": "1748-1708",
"publisher": "Wiley",
"URL": "https://doi.org/10.1111/apha.70202",
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