In recent years, Xiamen University has discovered that the hypoxia-inducible factor alanine hydroxylase (HIF-PHD) inhibitor compound
6 (
Fig. 9A) can serve as a potent agonist for THR
α and THR
β, with EC
50 values of 32.7 and 12.9 nmol/L, respectively. Utilizing a structure-guided design approach, the authors optimized the structure of compound
6 to generate compound
7, eliminating PHD2 inhibition. During this optimization, it was observed that the isoquinoline skeleton and glycine side chain of the compound are crucial for maintaining THR
β agonistic activity. Previous exploration revealed that the hydrophobic pocket of THR
β is more flexible than that of THR
α, offering an opportunity for developing selective THR
β agonists
52. Building upon compound
7, the authors introduced a large sterically hindered hydrophobic group on the left side of the isoquinoline ring, leading to compound
8, which demonstrated selectivity for THR
β (EC
50 of 19.8 nmol/L, inactive for THR
α). Besides EC
50 values, the researchers also evaluated the maximum activation ability of the compounds in comparison to T3.
16g, achieved through additional structural optimization, retained potent THR
β activity (EC
50 of 21 nmol/L) and exhibited the highest maximum activation ability (85%, compared to 44.5% for compound
8) in this series. Notably,
16g maintained selectivity for THR
β and demonstrated a moderate agonist effect against the THR
β H435R mutant, with an EC
50 value of 1344.0 nmol/L
53.To gain a comprehensive understanding of the binding mode of
16g with THR
β, docking studies were conducted. Docking analysis revealed that the carboxyl group of the
16g establishes hydrogen bonds with Arg282 and Arg316. The nitrogen atom and oxygen atom of the amide fragment form hydrogen bond interactions in Met313 and Asn331, respectively. Additionally, the conserved hydroxyl group establishes hydrogen bonds with the side chain of Asn331 (
Fig. 9B). These interactions stabilize the
16g conformation, ensuring good selectivity and activity. The docking results of
16g also support the previous view that the hydrophobic sub-pocket of THR
β is more flexible compared to that of THR
α. In the pharmacodynamic study,
16g significantly reduced the levels of TG and total cholesterol (TC) in HepG2 cells. Consistent with these results of the HepG2,
16g significantly decreased TG and TC levels in primary mouse hepatocytes and reduced lipid accumulation. This observed effect can be attributed to the stimulation of AMPK phosphorylation, resulting in the phosphorylation-induced inactivation of ACC and an increase in carnitine palmitoyltransferase (CPT1).