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Amyloid-like fibrils derived from β-sheets of gp120 contribute to the neuronal pathology of HIV-associated neurocognitive disorders
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Chan Yanga, b, Ruyu Wanga, Chen Chenga, Jiaqi Yuc, Kunyu Lua, Haobin Lia, Jinshen Wanga, Guodong Hub, Hao Yanga, Jianfu Hea, Hao Sua, Qingping Zhana, Suiyi Tana, *, Tong Zhangc, *, Shuwen Liua, b, d, e, *
Acta Pharmaceutica Sinica B | 2025, 15(4) : 2273 - 2277
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Acta Pharmaceutica Sinica B | 2025, 15(4): 2273-2277
LETTER TO THE EDITOR
Amyloid-like fibrils derived from β-sheets of gp120 contribute to the neuronal pathology of HIV-associated neurocognitive disorders
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Chan Yanga, b, Ruyu Wanga, Chen Chenga, Jiaqi Yuc, Kunyu Lua, Haobin Lia, Jinshen Wanga, Guodong Hub, Hao Yanga, Jianfu Hea, Hao Sua, Qingping Zhana, Suiyi Tana, *, Tong Zhangc, *, Shuwen Liua, b, d, e, *
Affiliations
  • aGuangdong Provincial Key Laboratory of New Drug Screening, NMPA Key Laboratory of Drug Metabolism Research and Evaluation, School of Pharmaceutical Sciences, Southern Medical University, Guangzhou 510515, China
  • bDepartment of Respiratory and Critical Care Medicine, Institute of Respiratory and Critical Care Medicine, the Tenth Affiliated Hospital of Southern Medical University, Southern Medical University, Guangdong 523059, China
  • cBeijing Key Laboratory for HIV/AIDS Research, Clinical and Research Center for Infectious Diseases, Beijing Youan Hospital, Capital Medical University, Beijing 100069, China
  • dKey Laboratory of Infectious Diseases Research in South China (Southern Medical University), Ministry of Education, Guangzhou 510515, China
  • eMOE Innovation Center for Medical Basic Research on Inflammation and Immune Related Diseases, Southern Medical University, Guangzhou 510515, China
About Author:

E-mail addresses: (Suiyi Tan)

(Tong Zhang)

(Shuwen Liu)

These authors made equal contributions to this work.

Author contributions

Shuwen Liu, Tong Zhang, Suiyi Tan, Chan Yang: Investigation. Chan Yang, Ruyu Wang, Chen Cheng, Haobin Li, Kunyu Lu, Jinshen Wang, Hao Yang, Jianfu He, Hao Su and Qingping Zhan: Methodology, Validation, Formal analysis, Data Curation. Tong Zhang and Jiaqi Yu: Resources, Provided samples of clinical patients. Chan Yang, Ruyu Wang and Shuwen Liu: Writing -Original Draft. Shuwen Liu, Suiyi Tan, Guodong Hu and Chan Yang: Supervision, Funding acquisition

doi: 10.1016/j.apsb.2025.02.024
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HIV-associated neurocognitive disorders (HAND)  /  HIV-1 gp120  /  Amyloid peptides  /  Neuropathology  /  C–C chemokine receptors type 5 (CCR5)
Chan Yang, Ruyu Wang, Chen Cheng, Jiaqi Yu, Kunyu Lu, Haobin Li, Jinshen Wang, Guodong Hu, Hao Yang, Jianfu He, Hao Su, Qingping Zhan, Suiyi Tan, Tong Zhang, Shuwen Liu. Amyloid-like fibrils derived from β-sheets of gp120 contribute to the neuronal pathology of HIV-associated neurocognitive disorders[J]. Acta Pharmaceutica Sinica B, 2025 , 15 (4) : 2273 -2277 . DOI: 10.1016/j.apsb.2025.02.024
To the Editor:
Despite advancements in combinational antiretroviral treatment for HIV-1, cognitive impairments are still experienced by over 50% of acquired immunodeficiency syndrome patients1. Unlike other classical forms of neurologic dementia such as Alzheimer's disease, HIV-associated neurocognitive disorder (HAND) predominantly manifests in younger individuals with HIV infection, which is categorized into asymptomatic neurocognitive impairment, mild neurocognitive disorder, and severe HIV-associated dementia, necessitating urgent development of effective diagnosis and treatment.
Amyloidoses are histological hallmarks of neurodegenerative diseases. These amyloidosis diseases commonly manifest as disease-specific amyloid misfolding, leading to spontaneous assembly into fibrillar aggregates. Amyloid fibril-forming proteins were found to be exclusively encoded by host cells. Previously, we have characterized the amyloid properties of HIV-1 glycoprotein gp120 and identified fibrogenic peptides EPs (enhancer peptides) and GAPs (amyloid peptides from HIV-1 gp120) as potential enhancers of HIV-1 infection2,3. In this study, we discovered the novel and neurotoxic GAPs in the central nervous system of transgenic gp120 (Tg-gp120) mice and patients with HAND. The central nervous system targeting potential GAPs, GP-3-6 and GP-18 were identified within conserved β-sheet structures of gp120. Mechanistic studies suggested GP-3-6 and GP-18 induced neurotoxicity by activating the neuronal C–C chemokine receptors type 5 (CCR5)/cAMP-response element binding protein (CREB) signaling. Furthermore, Maraviroc (MVC), an FDA-approved HIV-1 entry inhibitor targeting CCR5, ameliorated neuropathological injury in Tg-gp120 mice and reduced neuronal cytotoxicity induced by GAPs.
Our overall line of research is shown in Fig. 1A. Neuropathologically, Tg-gp120 mice, a transgenic mouse model of HIV-related brain injury induced by glial fibrillary acidic protein (GFAP)-primed overexpression of soluble gp120, showed significant loss of neuronal nuclei (NeuN), along with dendritic and presynaptic damage indicated by decreased expression of neuropil-positive microtubule-associated protein 2 (MAP-2) and synaptophysin (SYP) in the cortex and hippocampus (Supporting Information Fig. S1A–S1F). Meanwhile, gp120 overexpression led to progressive neuroinflammation with significant activation of astrocytic GFAP and microglial Iba1 compared with WT mice (Fig. S1G–S1L). After confirming gp120-induced nerve injury, we investigated the presence of amyloid fibrils using Thioflavin-S (ThS) staining, a fluorescent histochemical marker of dense core senile plaques. As Tg-gp120 mice aged, amyloid aggregates were observed in the neocortical and the hippocampus's CA1, CA3, and dentate gyrus (DG) regions (Fig. 1B, Supporting Information Fig. S2A and S2B). Co-staining of brain sections with ThS and immunofluorescence (IF) revealed co-localized amyloid fibrils with GFAP (Fig. 1C), suggesting that gp120 may be responsible for promoting amyloid fibril formation through GFAP expression. Further transmission electron microscopy (TEM) results demonstrated the presence of characteristic amyloid-like fibrils in cortical astrocytes and neuronal spaces, in cerebrospinal fluid (CSF) samples, as well as in amyloid extracted4 from aging Tg-gp120 mice (Fig. 1D, Supporting Information Figs. S2C, S3A and S3B). These findings indicate the involvement of amyloidogenic gp120 in HAND pathogenesis.
The confirmation of fibril-forming protein was achieved through immunoblot and immunogold labeling analysis, which showed partial recognition of brain extracts from Tg-gp120 mice by the gp120 antibody (Fig. S3C and S3D). These findings were consistent with the results obtained from ThT/IF/nuclei triple staining (Fig. 1E) and Congo red/IHC double staining (Fig. S3E). Additionally, we investigated the levels of endogenous β-amyloid (Aβ) and Tau protein, two pathological markers associated with HIV-induced neurodegeneration and Alzheimer's disease development. No difference was observed in Aβ1–42 levels between Tg-gp120 and WT mice in brain sections, CSF, or serum (Supporting Information Fig. S4A–S4D). However, phosphorylated Tau at Ser396 was specifically activated in 16-month-old Tg-gp120 mice (Fig. S4E–S4H), prompting that gp120 may not be the sole source of amyloid material. Furthermore, we performed LC–MS/MS analysis to identify peptides derived by gp120 (Supporting Information Fig. S5). Initially, a total of 12 highly abundant peptides were discovered and subjected to in vitro aggregation testing as well as biochemical characterization (Supporting Information Table S1). Preliminary secondary structure and neuronal cytotoxicity analysis screened that GP-3-6 (aa.THGIRPVVSTQLLL) exhibited a transition to a typical β-fold conformation and neuronal damage effects upon induction (Supporting Information Fig. S6). This peptide is situated between two antiparallel β-sheets within the invariant region C2 flanked by V2–V3 loops of gp120 (Supporting Information Fig. S7A). Further characterization involving Congo red staining, ThT binding assays, circular dichroism (CD) spectroscopy, atomic force microscopy, and TEM analysis were conducted to elucidate the fibril formation process associated with GP-3-6 peptide behavior (Fig. 1F and G, Fig. S7B–S7G). Moreover, gp120 recognition towards fibrotic GP-3-6 could be observed through immunological assays conducted in vitro (Fig. S7H), and this recognition displayed concentration-dependent characteristics (Fig. S7I and S7J). Further, sequence conservation of GP-3-6 was confirmed by gp120 library matching in the UniProtKB library (https://www.uniprot.org/blast). Following this, we investigated the presence of such amyloid fibrils in HAND patients and explore underlying mechanisms causing nerve damage.
We further identified gp120-derived amyloid-like fibrils in HAND patients. CSF samples were collected from healthy donors (n = 3), HIV+ subjects with (n = 6) or without HAND (n = 3) to confirm the presence of GAPs (Supporting Information Table S2). Initially, we performed TEM and immunogold staining. As shown in Fig. 1H and Supporting Informatin Fig. S8A, visualization of CSF samples confirmed the propensity of the fibrils-containing constructs in HAND patients, with the typical morphology of amyloids appearing in patients with severe HIV-associated dementia, with an average diameter of 5.66 nm (Fig. 1I). Moreover, CSF samples obtained from two groups of HIV+ patients exhibited the gp120+/amyloid+ co-staining (Fig. S8B). However, we observed no significant elevation in gp120 levels or free Aβ1–42 of all HAND patients compared to that of HIV-1 infections (Fig. S8C–S8E), but the CSF from HAND patients with identified fibrils demonstrated enhanced recognition by gp120 (P < 0.05) (Fig. 1J), indicating the recognition of amyloid fibrils by gp120. The corresponding CSF samples (n = 2) were then subjected to gp120-targeted LC–MS/MS analysis (Fig. S8F). We identified over 600 and 300 peptides derived from gp120 in the non-HAND and HAND patients, respectively (Fig. S8G). We found that peptides were consistent with the sequence of GP-3-6 or homologous to GP-3-6 were detected in the non-HAND and HAND patients (Fig. 1K, Supporting Information Table S3), suggesting that the occurrence pathway of GAPs is relatively conservative and persists in HAND patients.
Additionally, to enhance our understanding of the role of GAPs in the brain of HAND patients, neuropeptidomes was employed to analyze differentially expressed peptides derived from gp120 in the CSF of HAND patients and HIV+ individuals without HAND (Supporting Information Table S4). The results showed that 32 of the 39 peptides identified were highly expressed in non-HAND individuals (Supporting Information Table S5), indicating their potential as soluble GAP precursors (Supporting Information Fig. S9A). The most notable difference was an increase in the levels of GP-18 (aa. LKAQFPNKTIIFNQ) in non-HAND patients (Fig. S9B). We observed that GP-18 exhibited a concentration-dependent binding to Congo red and could form aggregates with a typical β-fold structure as well as ThT-positive species (Fig. S9C–S9G). We further confirmed the secondary structure and fibrillar morphology of GP-18, which formed long and rigid amyloid fibrils recognized by gp120 (Fig. 1L and M, Fig. S9H–S9L). GP-18 was located before the CD4-binding loop within β-sheets of gp120 and its conservation across various HIV-1 strains (https://www.uniprot.org/blast). These findings highlight the presence of novel neurotoxic GAPs in patients with HAND and the potential utility of peptidomics profiling for identifying amyloid proteins associated with HAND.
We further investigated the neuropathological function of GAPs and found that mature fibrils, rather than soluble GP-3-6 monomers, were responsible for the neurotoxicity (Supporting Information Fig. S10A). We subsequently observed varying degrees of cytotoxicity in mouse primary mouse neurons, neuroblastoma cells, microglia, and astrocytes when exposed to fibrillar GP-3-6 and GP-18 (Fig. 2A and B, Fig. S10B–S10H), supporting the association of GAPs with HAND. To explore the mechanisms by which GAPs induce neural damage, we focused on the gp120-binding coreceptor CCR5, a negative regulator of CREB, which has been recognized as a key mechanism in neurological disease5. We examined CCR5 expression in Tg-gp120 mice at different ages and observed varying levels of upregulation (Supporting Information Fig. S11A–S11C). Co-localization between amyloid fibrils and upregulated CCR5 expression was detected in Tg-gp120 mice, suggesting that amyloid fibrils activate CCR5 (Fig. 2C). We found the differential CCR5 expression among cell types associated with HAND events and found no significant changes in microglia, but significantly enhanced in neurons and astrocytes (Fig. 2D, Fig. S11D). In vitro interventions with GP-3-6 and GP-18 confirmed the upregulation of neuronal CCR5 was accompanied by the downregulation of CREB and activation of p38 mitogen-activated protein kinase in Tg-gp120 mice and neurons (Fig. 2E–I, Fig. S11E–S11I), suggesting that GAPs directly activate neuron-specific CCR5.
We then investigated the protective effects of CCR5 inhibition against HIV-1 gp120-or GAPs-induced neurotoxicity (Fig. 2J). MVC known for selectively antagonizing CCR5 function and brain tissue absorption, was used for in vitro treatment, which showed prevention of neuronal cell death induced by GAPs but had no impact on GAPs-amyloid formation (Fig. 2K and L, Supporting Information Fig. S12A). However, MVC administration reversed neuropathological damage in mice (Fig. S12B) and reduced amyloid accumulation (Fig. 2M), inconsistent with the earlier in vitro results. Further investigating the reason was that MVC treatment decreased proliferating GFAP levels (Fig. 2N, Fig. S12C), suggesting a neuroprotective effect of inhibiting host CCR5 against GAPs-induced neuronal toxicity. Subsequently, we observed a significant increase in neuropil density as indicated by MAP-2, SYP, BrdU+-NeuN+ double-labeled neurons, along with the inhibitory effects of MVC treatment on gp120-induced Iba1 activation compared with solvent-treated mice (Fig. 2N and O, Supporting Information Fig. S13A). The neuropathological changes resulting from CCR5 inhibition were manifested in the improvement of memory deficits and spatial learning in Tg-gp120 mice (Fig. S13B). We further explored the key molecular CCR5-signaling pathways and validated that inhibiting CCR5 enhances CREB expression, revealing a significant decrease in p38 mitogen-activated protein kinase and pAKT levels compared to control Tg-gp120 mice (Fig. 2P, Fig. S13C–S13G). Collectively, in this part, we confirmed CCR5 signaling as a neurotoxic target of gp120 and GAPs. Our findings provide insights into the etiology of HAND and suggest that targeting amyloidogenic segments of gp120 could be a promising approach for drug development, which also supports the potential use of MVC in clinical treatment for HAND.
1.
Wang Y, Liu M, Lu Q, Farrell M, Lappin JM, Shi J, et al. Global prevalence and burden of HIV-associated neurocognitive disorder: a meta-analysis. Neurology 2020;95:e2610—21.
2.
Tan S, Li L, Lu L, Pan C, Lu H, Oksov Y, et al. Peptides derived from HIV-1 gp120 co-receptor binding domain form amyloid fibrils and enhance HIV-1 infection. FEBS Lett 2014;588:1515—22.
3.
Tan S, Li W, Yang C, Zhan Q, Lu K, Liu J, et al. gp120-derived amyloidogenic peptides form amyloid fibrils that increase HIV-1 infectivity. Cell Mol Immunol 2024;21:479—94.
4.
Yang Y, Arseni D, Zhang W, Huang M, Lövestam S, Schweighauser M, et al. Cryo-EM structures of amyloid-β 42 filaments from human brains. Science 2022;375:167—72.
5.
Shen Y, Zhou M, Cai D, Filho DA, Fernandes G, Cai Y, et al. CCR5 closes the temporal window for memory linking. Nature 2022;606:146—52.
Year 2025 volume 15 Issue 4
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doi: 10.1016/j.apsb.2025.02.024
  • Receive Date:2024-07-27
  • Online Date:2026-09-17
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  • Received:2024-07-27
  • Revised:2024-11-20
  • Accepted:2025-01-21
Affiliations
    aGuangdong Provincial Key Laboratory of New Drug Screening, NMPA Key Laboratory of Drug Metabolism Research and Evaluation, School of Pharmaceutical Sciences, Southern Medical University, Guangzhou 510515, China
    bDepartment of Respiratory and Critical Care Medicine, Institute of Respiratory and Critical Care Medicine, the Tenth Affiliated Hospital of Southern Medical University, Southern Medical University, Guangdong 523059, China
    cBeijing Key Laboratory for HIV/AIDS Research, Clinical and Research Center for Infectious Diseases, Beijing Youan Hospital, Capital Medical University, Beijing 100069, China
    dKey Laboratory of Infectious Diseases Research in South China (Southern Medical University), Ministry of Education, Guangzhou 510515, China
    eMOE Innovation Center for Medical Basic Research on Inflammation and Immune Related Diseases, Southern Medical University, Guangzhou 510515, China

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* Corresponding authors.
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表12种不同金属材料的力学参数

Family
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Number of
genus
种数
Number of
species
占总种数比例
Percentage of
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Number of
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Percentage of total
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鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
小菇属 Mycena 11 5.26
光柄菇属 Pluteus 5 2.39
红菇属 Russula 17 8.13
栓菌属 Trametes 5 2.39
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