BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice

Objective: Branched chain amino acid (BCAA) catabolic defects are implicated to be causal determinates of multiple diseases. This work aimed to better understand how enhancing BCAA catabolism affected metabolic homeostasis as well as the mechanisms underlying these improvements. Methods: The rate li...

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Published in:Molecular Metabolism
Main Authors: Eliza Bollinger, Matthew Peloquin, Jenna Libera, Bina Albuquerque, Evanthia Pashos, Arun Shipstone, Angela Hadjipanayis, Zhongyuan Sun, Gang Xing, Michelle Clasquin, John C. Stansfield, Brendan Tierney, Steven Gernhardt, C. Parker Siddall, Timothy Greizer, Frank J. Geoly, Sarah R. Vargas, Lily C. Gao, George Williams, Mackenzie Marshall, Amy Rosado, Claire Steppan, Kevin J. Filipski, Bei B. Zhang, Russell A. Miller, Rachel J. Roth Flach
Format: Article
Language:English
Published: Elsevier 2022-12-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2212877822001806
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author Eliza Bollinger
Matthew Peloquin
Jenna Libera
Bina Albuquerque
Evanthia Pashos
Arun Shipstone
Angela Hadjipanayis
Zhongyuan Sun
Gang Xing
Michelle Clasquin
John C. Stansfield
Brendan Tierney
Steven Gernhardt
C. Parker Siddall
Timothy Greizer
Frank J. Geoly
Sarah R. Vargas
Lily C. Gao
George Williams
Mackenzie Marshall
Amy Rosado
Claire Steppan
Kevin J. Filipski
Bei B. Zhang
Russell A. Miller
Rachel J. Roth Flach
author_facet Eliza Bollinger
Matthew Peloquin
Jenna Libera
Bina Albuquerque
Evanthia Pashos
Arun Shipstone
Angela Hadjipanayis
Zhongyuan Sun
Gang Xing
Michelle Clasquin
John C. Stansfield
Brendan Tierney
Steven Gernhardt
C. Parker Siddall
Timothy Greizer
Frank J. Geoly
Sarah R. Vargas
Lily C. Gao
George Williams
Mackenzie Marshall
Amy Rosado
Claire Steppan
Kevin J. Filipski
Bei B. Zhang
Russell A. Miller
Rachel J. Roth Flach
author_sort Eliza Bollinger
collection DOAJ
container_title Molecular Metabolism
description Objective: Branched chain amino acid (BCAA) catabolic defects are implicated to be causal determinates of multiple diseases. This work aimed to better understand how enhancing BCAA catabolism affected metabolic homeostasis as well as the mechanisms underlying these improvements. Methods: The rate limiting step of BCAA catabolism is the irreversible decarboxylation by the branched chain ketoacid dehydrogenase (BCKDH) enzyme complex, which is post-translationally controlled through phosphorylation by BCKDH kinase (BDK). This study utilized BT2, a small molecule allosteric inhibitor of BDK, in multiple mouse models of metabolic dysfunction and NAFLD including the high fat diet (HFD) model with acute and chronic treatment paradigms, the choline deficient and methionine minimal high fat diet (CDAHFD) model, and the low-density lipoprotein receptor null mouse model (Ldlr−/−). shRNA was additionally used to knock down BDK in liver to elucidate liver-specific effects of BDK inhibition in HFD-fed mice. Results: A rapid improvement in insulin sensitivity was observed in HFD-fed and lean mice after BT2 treatment. Resistance to steatosis was assessed in HFD-fed mice, CDAHFD-fed mice, and Ldlr−/− mice. In all cases, BT2 treatment reduced steatosis and/or inflammation. Fasting and refeeding demonstrated a lack of response to feeding-induced changes in plasma metabolites including insulin and beta-hydroxybutyrate and hepatic gene changes in BT2-treated mice. Mechanistically, BT2 treatment acutely altered the expression of genes involved in fatty acid oxidation and lipogenesis in liver, and upstream regulator analysis suggested that BT2 treatment activated PPARα. However, BT2 did not directly activate PPARα in vitro. Conversely, shRNA-AAV-mediated knockdown of BDK specifically in liver in vivo did not demonstrate any effects on glycemia, steatosis, or PPARα-mediated gene expression in mice. Conclusions: These data suggest that BT2 treatment acutely improves metabolism and liver steatosis in multiple mouse models. While many molecular changes occur in liver in BT2-treated mice, these changes were not observed in mice with AAV-mediated shRNA knockdown of BDK. All together, these data suggest that systemic BDK inhibition is required to improve metabolism and steatosis by prolonging a fasting signature in a paracrine manner. Therefore, BCAA may act as a “fed signal” to promote nutrient storage and reduced systemic BCAA levels as shown in this study via BDK inhibition may act as a “fasting signal” to prolong the catabolic state.
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spelling doaj-art-e41f6bdec3ce4e71ab9ff32d257eaba62025-08-19T19:59:21ZengElsevierMolecular Metabolism2212-87782022-12-016610161110.1016/j.molmet.2022.101611BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in miceEliza Bollinger0Matthew Peloquin1Jenna Libera2Bina Albuquerque3Evanthia Pashos4Arun Shipstone5Angela Hadjipanayis6Zhongyuan Sun7Gang Xing8Michelle Clasquin9John C. Stansfield10Brendan Tierney11Steven Gernhardt12C. Parker Siddall13Timothy Greizer14Frank J. Geoly15Sarah R. Vargas16Lily C. Gao17George Williams18Mackenzie Marshall19Amy Rosado20Claire Steppan21Kevin J. Filipski22Bei B. Zhang23Russell A. Miller24Rachel J. Roth Flach25Internal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInflammation & Immunology Research Unit, Pfizer Inc, Cambridge MA 02139, USAInflammation & Immunology Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAEarly Clinical Development, Pfizer Inc, Cambridge MA 02139, USAMedicine Design, Pfizer Inc, Groton, CT 06340, USAMedicine Design, Pfizer Inc, Groton, CT 06340, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USADrug Safety Research and Development, Pfizer Inc, Groton CT 06340, USADrug Safety Research and Development, Pfizer Inc, Groton CT 06340, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAMedicine Design, Pfizer Inc, Groton, CT 06340, USAMedicine Design, Pfizer Inc, Groton, CT 06340, USAMedicine Design, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USAInternal Medicine Research Unit, Pfizer Inc, Cambridge MA 02139, USA; Corresponding author. Pfizer Inc, 1 Portland St, Cambridge MA 02139, USA.Objective: Branched chain amino acid (BCAA) catabolic defects are implicated to be causal determinates of multiple diseases. This work aimed to better understand how enhancing BCAA catabolism affected metabolic homeostasis as well as the mechanisms underlying these improvements. Methods: The rate limiting step of BCAA catabolism is the irreversible decarboxylation by the branched chain ketoacid dehydrogenase (BCKDH) enzyme complex, which is post-translationally controlled through phosphorylation by BCKDH kinase (BDK). This study utilized BT2, a small molecule allosteric inhibitor of BDK, in multiple mouse models of metabolic dysfunction and NAFLD including the high fat diet (HFD) model with acute and chronic treatment paradigms, the choline deficient and methionine minimal high fat diet (CDAHFD) model, and the low-density lipoprotein receptor null mouse model (Ldlr−/−). shRNA was additionally used to knock down BDK in liver to elucidate liver-specific effects of BDK inhibition in HFD-fed mice. Results: A rapid improvement in insulin sensitivity was observed in HFD-fed and lean mice after BT2 treatment. Resistance to steatosis was assessed in HFD-fed mice, CDAHFD-fed mice, and Ldlr−/− mice. In all cases, BT2 treatment reduced steatosis and/or inflammation. Fasting and refeeding demonstrated a lack of response to feeding-induced changes in plasma metabolites including insulin and beta-hydroxybutyrate and hepatic gene changes in BT2-treated mice. Mechanistically, BT2 treatment acutely altered the expression of genes involved in fatty acid oxidation and lipogenesis in liver, and upstream regulator analysis suggested that BT2 treatment activated PPARα. However, BT2 did not directly activate PPARα in vitro. Conversely, shRNA-AAV-mediated knockdown of BDK specifically in liver in vivo did not demonstrate any effects on glycemia, steatosis, or PPARα-mediated gene expression in mice. Conclusions: These data suggest that BT2 treatment acutely improves metabolism and liver steatosis in multiple mouse models. While many molecular changes occur in liver in BT2-treated mice, these changes were not observed in mice with AAV-mediated shRNA knockdown of BDK. All together, these data suggest that systemic BDK inhibition is required to improve metabolism and steatosis by prolonging a fasting signature in a paracrine manner. Therefore, BCAA may act as a “fed signal” to promote nutrient storage and reduced systemic BCAA levels as shown in this study via BDK inhibition may act as a “fasting signal” to prolong the catabolic state.http://www.sciencedirect.com/science/article/pii/S2212877822001806BCAAMetabolismMetabolic syndromeNAFLDDiabetes
spellingShingle Eliza Bollinger
Matthew Peloquin
Jenna Libera
Bina Albuquerque
Evanthia Pashos
Arun Shipstone
Angela Hadjipanayis
Zhongyuan Sun
Gang Xing
Michelle Clasquin
John C. Stansfield
Brendan Tierney
Steven Gernhardt
C. Parker Siddall
Timothy Greizer
Frank J. Geoly
Sarah R. Vargas
Lily C. Gao
George Williams
Mackenzie Marshall
Amy Rosado
Claire Steppan
Kevin J. Filipski
Bei B. Zhang
Russell A. Miller
Rachel J. Roth Flach
BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice
BCAA
Metabolism
Metabolic syndrome
NAFLD
Diabetes
title BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice
title_full BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice
title_fullStr BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice
title_full_unstemmed BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice
title_short BDK inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice
title_sort bdk inhibition acts as a catabolic switch to mimic fasting and improve metabolism in mice
topic BCAA
Metabolism
Metabolic syndrome
NAFLD
Diabetes
url http://www.sciencedirect.com/science/article/pii/S2212877822001806
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