Tuesday, August 25, 2026

BIMATOPROST GRENOD NCX 470



INTRODUCTION:

A unique glaucoma medication, containing a proprietary nitric oxide (NO) donating platform and Bimatoprost is under FDA review. This dual action investigational drug is called NCX 470, also known as bimatoprost grenod.




The U.S. regulatory review process was started in July 2026 after Kowa (Japan) submitted a New Drug Application (NDA) for NCX 470 to the U.S. FDA.

MECHANISM OF ACTION:

The agent is unique in that it combines two pharmacological approaches in a single molecule:

  • Bimatoprost — a prostaglandin-analogue that promotes uveoscleral outflow.
  • Nitric oxide (NO) — a signaling molecule that enhances aqueous humor outflow through the conventional trabecular pathway.

The novel drug lowers IOP by acting on both major aqueous outflow pathways. By targeting these pathways simultaneously, researchers hope to achieve substantial IOP reduction.




TRIALS:

NCX 470 has been studied in a Phase 2 trial, Dolomites and in a Phase 3b trial, Whistler, and a separate Phase 3 program is ongoing in Japan. Exploratory nonclinical studies in a well-defined model with optic nerve head and retina damage (ET-1-induced ischemia/reperfusion) investigated the NCX 470 effects beyond its IOP lowering properties. The results suggest that NCX 470 improves ocular perfusion and restores retinal function in damaged eyes compared to vehicle and to Bimatoprost and may therefore have protective properties for the retina. Beneficial effects of NCX 470 have additionally been demonstrated in an in vivo model of retinal cell damage.

NCX 470 has completed two major Phase 3 studies:MONT BLANC and DENALI.

In the MONT BLANC study, 661 participants were analyzed. NCX 470 0.1% produced IOP reductions of approximately 8.0–9.7 mmHg across the evaluated time points and showed greater mean IOP reductions than latanoprost at all six measured time points, reaching statistical significance at four of them. 

The DENALI Phase 3 program also met its primary non-inferiority objective compared with latanoprost, supporting the subsequent U.S. NDA submission. 

SIDE-EFFECTS:

Clinical trials have reported a few ocular adverse events, with conjunctival/ocular hyperemia among the most common in the MONT BLANC study. 

REFERENCES:

  1. Impagnatiello F, Toris CB, Batugo M, Prasanna G, Borghi V, Bastia E, Ongini E, Krauss AH. Intraocular Pressure-Lowering Activity of NCX 470, a Novel Nitric Oxide-Donating Bimatoprost in Preclinical Models. Invest Ophthalmol Vis Sci. 2015 Oct;56(11):6558-64. doi: 10.1167/iovs.15-17190. PMID: 26457541.
  2. Fechtner R, Mansberger S, Branch J, Mulaney J, Ziebell S, Lopez K, Hubatsch D. A Randomized, Controlled Comparison of NCX 470, a Nitric Oxide-Donating Bimatoprost, and Latanoprost in Subjects with Open-Angle Glaucoma or Ocular Hypertension: The MONT BLANC Study. Am J Ophthalmol. 2024 Aug;264:66-74. doi: 10.1016/j.ajo.2024.03.002. Epub 2024 Mar 16. PMID: 38499140.
  3. Elena Bastia, Nicoletta Almirante, Michael V W Bergamini, Tomas Navratil, Marlene Woodruff Modi, Francesco Impagnatiello; Nonclinical development of NCX 470, a novel nitric oxide (NO)-donating,IOP lowering prostaglandin analog for glaucoma and ocular hypertension. Invest. Ophthalmol. Vis. Sci. 2019;60(9):3806.
  4. https://www.medchemexpress.com/bimatoprost-grenod.html?srsltid=AfmBOoqkr0sgp5DyMOu0TSKUe5sxKE2dgM0ZfAJ8cMNEvT1SnmcggQ9l

Thursday, August 20, 2026

SYSTEMIC COMORBIDITIES & POAG

 


It is often assumed that systemic co-morbidities, such as diabetes mellitus (DM) and hypertension (HT), are associated with a higher prevalence of glaucoma. However, there is also a suspicion that the number of patients with systemic disorders are diagnosed with glaucoma simply because of the increased approach of these patients to medical facilities and frequent eye checkups compared to normal, healthy populations, leading to higher rates of diagnosis. However, many landmark studies have definitely reported a significantly increased association of co-morbid systemic disorders and glaucoma.




A 5-year cohort study was performed by Zhou et al, to analyze the association between systemic comorbidity burden and glaucoma progression. [1] The comorbidity burden was measured by the age-adjusted Charlson Comorbidity Index (age-CCI) among patients attending the Cole Eye Institute in the USA. The Charlson Comorbidity Index (CCI) is a widely used assessment tool designed to predict long-term mortality. The objective of the study was to investigate whether higher CCI scores are associated with worse glaucoma outcomes, specifically progression to a more advanced stage of disease.

The retrospective cohort study included 11,863 patients aged 18 years of age or older diagnosed with primary open angle glaucoma, pre-glaucoma, or ocular hypertension between 2018 and 2024 with at least 5 years of follow-up.

The authors found that each one-point increase in the age-CCI score was associated with a 6% increase in the odds of progression from early-stage to moderate-stage glaucoma over the 5-year follow-up period (OR = 1.06, 95% CI: 1.04–1.09, P = 1.05×10−7). The odds of progression to moderate-stage glaucoma were higher in males compared with females (OR = 1.32, 95% CI: 1.17–1.49, P = 4.15×10−6). Compared with white patients, the odds of progression were higher for the black (OR = 2.09, 95% CI: 1.81–2.40, P < 2×10−16) and “other race” (OR = 1.81, 95% CI: 1.47–2.23, P = 1.52×10−8) cohorts. Patients with private insurance had lower odds of progression than those with public insurance (OR = 0.75, 95% CI: 0.65–0.86, P = 2.89×10−5), whereas patients with no listed insurance had no significant difference compared with those with public insurance. Patients with a history of one or more ophthalmic procedures or age related macular degeneration (AMD) diagnosis had higher odds of progression from early-stage to moderate- stage glaucoma than those without (OR = 1.33, 95% CI: 1.17–1.51, P = 1.84×10−5; OR = 1.34, 95% CI: 1.05–1.71, P = 0.017). Finally, each increase in prescribed glaucoma medication was associated with 88% increased odds of progression (95% CI: 1.80–1.97, P < 2×10−16).

The study also analyzed the progression from early-stage to severe-stage glaucoma. The odds of progression were higher for black (OR = 2.01, 95% CI: 1.61–2.49, P = 3.91×10−10) and “other race” (OR = 1.66, 95% CI: 1.17–2.31, P = 0.003) patients compared with white patients. Patients with private insurance had lower odds of progression than those with public insurance (OR = 0.68, 95% CI: 0.55–0.85, P = 0.001), while patients with no listed insurance had no significant difference compared with those with public insurance. Patients with a history of one or more ophthalmic procedures had higher odds than those without (OR = 1.81, 95% CI: 1.49–2.19, P = 1.54×10−9). AMD and RD diagnosis were associated with increased odds of progression from early-stage to severe-stage glaucoma (OR = 1.62, 95% CI: 1.13–2.26, P = 0.006; OR = 2.50, 95% CI: 1.57–3.85, P = 6.19×10−5). Finally, each additional prescribed glaucoma medication was associated with 90% increased odds of progression (OR = 1.90, 95% CI: 1.80–2.00, P < 2×10−16).

Another study was performed by Lin & colleagues, to compare the comorbid conditions between open-angle glaucoma patients and a control cohort. [2] The study group comprised of 76673 POAG patients, while the comparison group comprised of 230019 subjects matched to the study cohort. The data were collected retrospectively from the Taiwan National Health Insurance Research Database. In total, 31 medical comorbidities were selected based mainly on the Elixhauser Comorbidity Index.

More than half (50.5%) of the OAG patients had HT, and more than 30% had hyperlipidemia or DM (30.5% and 30.2%, respectively). The prevalence of 28 of 31 comorbidities were significantly higher for OAG patients than subjects without glaucoma after adjusting for age, gender, urbanization level, and monthly income. The adjusted odds ratio was more than 1.50 for hypertension, hyperlipidemia, systemic lupus erythematosus, diabetes, hypothyroidism, fluid and electrolyte disorders, depression, and psychosis.

However, a study by Motsko et al, did not find any association between glaucoma and hypothyroidism. [3]

A cross-sectional study of all glaucoma patients attending King AbdulAziz Medical City in Saudi Arabia was performed by Talaat et al, to identify the comorbidities in the patients.[4] A total of 283 patients met the inclusion criteria. 61% of their sample had hypertension, which was much higher than other reported studies from the region. Two mechanisms are postulated to explain the relationship between hypertension and open-angle glaucoma. The first is that increased arterial pressure will cause hardening and atherosclerotic changes in the retinal vasculature with subsequent arteriolar narrowing and elevated resistance, which eventually compromises the adequacy of perfusion to the optic disc. The other mechanism is related to the use of medications to lower blood pressure that might trigger episodes of systemic hypotension, which results in transient reductions in ocular blood supply.

58% individuals had DM. The mechanism by which DM is linked to glaucoma is believed to arise from impaired autoregulation of retinal and elevated predilection of retinal ganglion cells to programmed cell death.

Dyslipidemia was seen in approximately 33.6% of the sample. This finding is similar to other global studies but higher than local reports. there are reports of increased risk of glaucoma in patients taking high doses of statin medications.

Diabetes mellitus is not a well understood risk factor and its association to IOP or POAG is still controversial.[5] The epidemiological studies remain inconclusive, but some experimental studies have attempted to explain the biochemical mechanisms that link both the diseases. Neurodegenerative mechanisms cause an additional ganglion cell loss in glaucoma patients with DM. Therefore, the already vulnerable ganglion cells in glaucoma eyes come under additional stress in hyperglycemic conditions.

Large population studies, such as the Beaver Dam study, Rotterdam study and the Blue Mountains Eye study have shown an association between DM and higher IOP or development of POAG. Similarly, Amstrong’s analysis of the incidence of glaucoma in diabetes mellitus and a comparison with the incidence of glaucoma in the general population showed two to three times higher incidence of elevated IOP and POAG incidence in diabetes patients.[6] A recent meta-analysis of 47 studies by Zhao and colleagues reported a pooled relative risk of glaucoma of 1.48 in patients with diabetes compared to those without diabetes. [7]

The relationship between blood pressure (BP) and the incidence of glaucoma is still being debated. Some studies report that there is no correlation between systemic BP with IOP and the incidence of glaucoma. Even several other studies reported that in younger patients, HTN gave a protective effect by increasing the ocular perfusion pressure. However, some epidemiological studies have reported that an increase in systemic BP is associated with a slight increase in IOP. This is because the increase in BP increases episcleral venous pressure so that the aqueous outflow will decrease, causing a proportional increase in IOP.

A meta-analysis showed that individuals with systemic HTN had a significantly 1.71-fold risk of developing glaucoma compared with non-hypertensive individuals (1.71 (95% CI 1.58 to 1.85)). [8]

High BP can increase IOP through two mechanisms. First, an increase in the production of aqueous humor, which is caused by an increase in capillary pressure in the ciliary body, thereby increasing the intravascular pressure and IOP gradient; second, decreasing the outflow of aqueous humor due to an increase in episcleral venous pressure.

In conclusion, most systemic co-morbidities increase the risk for POAG and such patients should be monitored closely for the development/progression of glaucoma.

REFERENCES:

[1] Zhou, M. Y., Reed, H., Singh, R. P., Talcott, K. E., & Li, A. (2026). Association Between Systemic Comorbidity Burden and Glaucoma Progression: A 5-Year Cohort Study. Journal of Glaucoma35(6), 386–392.

[2] Lin HC, Chien CW, Hu CC, Ho JD. Comparison of comorbid conditions between open-angle glaucoma patients and a control cohort: a case-control study. Ophthalmology. 2010 Nov;117(11):2088-95.

[3] Motsko SP, Jones JK. Is there an association between hypothyroidism and open-angle glaucoma in an elderly population? An epidemiologic study. Ophthalmology. 2008 Sep;115(9):1581-4.

[4] Talaat K, Fathi OT, Alamoudi SM, Alzahrani MG, Mukhtar RM, Khan MA. Types of Glaucoma and Associated Comorbidities Among Patients at King Abdulaziz Medical City, Jeddah. Cureus. 2021 Jun 10;13(6):e15574.

[5] Costa L, Cunha JP, Amado D, Pinto LA, Ferreira J. Diabetes Mellitus as a Risk Factor in Glaucoma's Physiopathology and Surgical Survival Time: A Literature Review. J Curr Glaucoma Pract. 2015 Sep-Dec;9(3):81-5.

[6] Armstrong JR, Daily RK, Dobson HL, Girard LJ. The incidence of glaucoma in diabetes mellitus. A comparison with the incidence of glaucoma in the general population. Am J Ophthalmol 1960 Jul;50:55-63.

[7] Zhao D, Cho J, Kim MH, et al. Diabetes, fasting glucose, and the risk of glaucoma: a meta-analysis. Ophthalmology. 2015; 122:72–8.

[8] Nislawati R, Taufik Fadillah Zainal A, Ismail A, et al. Role of hypertension as a risk factor for open-angle glaucoma:a systematic review and meta-analysis. BMJ Open Ophthalmology 2021;6:e000798. doi:10.1136/bmjophth-2021-000798.




Saturday, August 15, 2026

HIGH MYOPIA AND POAG (By DR. NEHA YADAV)




GUEST AUTHOR



DR. NEHA YADAV

ALIGARH

INDIA

Dr. Neha Yadav is a Consultant Ophthalmologist at Shree Bhagwandas Hospital, with a keen interest in glaucoma and comprehensive eye care. She is committed to early diagnosis, appropriate management, and patient education to help prevent avoidable vision loss.

This article is from a recent talk presented by Dr. Neha at the Myopia Conclave of the Aligarh Ophthalmological Society.




















Monday, August 10, 2026

GINSENG EXOSOMES FOR GLAUCOMA


Chronic neuroinflammation is being recognized as a key etiopathological factor in the development of IOP-independent degeneration of retinal ganglion cells (RGCs) in glaucoma. Recent studies have highlighted neuroinflammation as a central pathological process driving RGC damage and disease progression.

Chronic low-grade retinal inflammation in glaucoma activates microglia, recruits peripheral immune cells and induces sustained release of pro-inflammatory cytokines, forming a vicious cycle of inflammation-oxidative stress-cell death that exacerbates neuronal injury.

As resident immune cells in the retina, microglia play a dual role in maintaining retinal homeostasis and responding to stress. Their dynamic functional state critically influences neuronal activities. Under pathological stimuli such as elevated IOP, ischemia, hypoxia or metabolic stress, microglia polarize from a resting state toward the pro- inflammatory M1 phenotype, releasing tumor necrosis factor-α (TNF-α), interleukin-1β (IL-1β), inducible nitric oxide synthase and excessive reactive oxygen species (ROS), directly inducing RGC apoptosis.

Importantly, even after IOP normalization, persistently activated M1 microglia maintain an inflammatory environment, driving irreversible neurodegeneration.

Therefore, targeted modulation of microglial polarization has been considered a promising strategy for neuroprotection in glaucoma. However, safe, sustained and precise neuroprotective modulation of the retinal inflammatory microenvironment remains a significant challenge.

Plant-derived exosomes have recently emerged as natural nanovesicles with broad therapeutic potential due to their wide availability, excellent biocompatibility, relatively low production cost and capacity to carry diverse bioactive molecules, including nucleic acids, proteins, lipids and plant-specific metabolites.

Ginseng (Panax ginseng), a traditional medicinal herb, contains active compounds such as ginsenosides, polysaccharides and miRNAs known for their anti-inflammatory, antioxidative and immunomodulatory properties.

Scientists have developed an injectable fibrin gel delivery system loaded with ginseng-derived exosomes (GE-fibrin gel, GE-gel) to modulate microglial polarization, reduce retinal inflammation and promote RGC survival.


Fibrin based hygrogel delivery system of GE

In vitro, GE showed strong antioxidant and anti-apoptotic effects by getting rid of reactive oxygen species caused by oxidative stress and lowering apoptosis in R28 cells. Both GE and GE-gel stopped lipopolysaccharide from causing pro-inflammatory M1 polarization of microglia and increased anti-inflammatory M2 phenotypic change.

Intravitreal injection of GE-gel suppressed pro-inflammatory microglial activation, diminished neuroinflammation and improved the survival of RGCs in a chronic ocular hypertension rat model.

The study also showed that GE-gel could promote microglial polarization, change the immune environment in the retina and protect RGCs functionally over the long term. This approach may hopefully provide promising solutions for rapid and effective glaucoma therapy.

REFERENCE:

Zhou D, Tan D, Peng X, Fang C, Yu Y, Iqbal H, Zhang J, Fu L, Tang L, Zhou X, Zhang X, Xiao R, Zhu W, Yue L, Liang Y. Ginseng-derived exosomes loaded in fibrin gel promote retinal ganglion cell survival in glaucoma by exerting anti-inflammatory effects through modulating microglial polarization. Regen Biomater. 2026 Jul 10;13:rbag146. doi: 10.1093/rb/rbag146. PMID: 42534522; PMCID: PMC13420499. 




Wednesday, August 5, 2026

STEM CELL THERAPY



Stem cells are immature, uncommitted cell types that possess the abilities to:

  • Self-renew indefinitely by symmetric cell division;
  • Undergo asymmetric cell division also, generating another stem cell and a daughter cell capable of differentiating into multiple mature cell types.

By definition, a cell’s level of lineage commitment is inversely related to its potency. Pluripotent stem cells are capable of generating all cell types in the developing and adult body (embryonic stem [ES] and induced pluripotent stem [iPS] cells are two examples), while multipotent somatic stem cells are committed to a certain developmental lineage. During differentiation, stem cells undergo lineage commitment and lose their self-renewal capacity, thereby becoming progenitor cell that are further restricted in potency. Progenitor cells undergo limited proliferation prior to terminal differentiation to yield a mature cell type. A variety of distinct stem and progenitor cell classes exist, each with particular characteristics that make them attractive for certain potential therapeutic purposes. 

Stem cell transplantation therapy is of clinical interest because of its potential to treat degenerative conditions that are currently incurable (although in some cases manageable), such as glaucoma. 

There are at least two mechanisms by which stem cell transplantation might be applied to glaucoma. 

The most significant, prospective therapeutic power of stem cells lies in their ability to generate new cells of many types and to effect tissue regeneration. 

Thus, it is conceivable that stem cells may offer therapeutic hope for glaucoma via selective cell replacement of retinal glaucoma cells (RGCs) and optic nerve regeneration to restore function.

In addition, certain types of stem cells possess protective properties capable of alleviating disease progression and promoting survival of endogenous tissue. This is proposed to occur through a variety of mechanisms, some of which are cell or tissue specific. Ideally, RGC neuroprotection would serve as an adjunct with existing ocular hypotensive therapies to prevent progressive glaucomatous vision loss.

Transplantation of stem cells that secrete relatively high levels of neurotrophic factors (NTFs) is likely to be the most applicable short-term cell-based therapy for glaucoma.

Neural stem cells are reportedly capable of reducing CNS inflammation, thereby promoting functional recovery in a range of neurodegenerative diseases. If inflammation proves integral to glaucomatous RGC loss, then it is conceivable that the antiinflammatory properties of transplanted stem cells could confer benefit in glaucoma.

Other purported mediators of glaucomatous neurodegeneration include oxidative stress, vascular insufficiency and excitotoxicity. There is evidence that some stem cells secrete factors that could modulate these processes. 

While many stem cell transplantation studies have demonstrated histological and functional improvement in various neurodegenerative disease models, the exact mechanism(s) and pathway(s) underlying this effect remain, for the most part, elusive. It has been hypothesized that NTF secretion, anti-inflammatory modulation and many other processes play key roles, however, definitive mechanisms specific to RGC survival in glaucoma should be elucidated prior to clinical translation. This will facilitate full comprehension of a novel treatment, and may also reveal unappreciated mechanisms of RGC neuroprotection that may be amenable to manipulation via alternate intervention.

At present, it is unclear whether it may be more advantageous to transplant neural or retinal stem cells, RGC precursors (committed to an RGC fate but not yet fully differentiated) or mature RGCs for RGC replacement. 



BIMATOPROST GRENOD NCX 470

INTRODUCTION: A unique glaucoma medication, containing a proprietary nitric oxide (NO) donating platform and Bimatoprost is under FDA review...