Aortic and mitral valve repair in a child with rheumatic heart disease

Multimed Man Cardiothorac Surg. 2025 Sep 8;2025. doi: 10.1510/mmcts.2025.082.

ABSTRACT

The patient had rheumatic heart disease, which resulted in severe aortic and mitral valve regurgitation. Repair of both valves was performed at 9 years of age. During surgery, the retracted aortic valve cusps required extension with bovine pericardial patches and suture reduction annuloplasty, and the mitral valve was repaired using a Cosgrove-Edwards (Edwards Lifesciences LLC, Irvine, CA) annuloplasty band. Post-operative echocardiography showed no regurgitation in either valve. The patient is doing well at 2 years of follow-up.

PMID:40920352 | DOI:10.1510/mmcts.2025.082

Impact of the COVID-19 pandemic on admission trends, diagnosis patterns, and demographics of ischemic heart disease patients: a retrospective study

Regarding the impact of the coronavirus disease 2019 (COVID-19) and the significance of controlling its spread and also due to the knowledge of the type of demographic characteristics during the Covid outbreak…  Read More

Transseptal access through synthetic materials: An in vitro comparative study of radiofrequency and needle-based techniques

Heart Rhythm. 2025 Jul 24:S1547-5271(25)02710-9. doi: 10.1016/j.hrthm.2025.07.029. Online ahead of print.

ABSTRACT

BACKGROUND: The transseptal approach for accessing left heart structures is commonly performed with metal needles and radiofrequency (RF) needles and wires, though how each device performs when crossing materials used in congenital heart disease (CHD) surgery is unknown.

OBJECTIVE: To compare the efficacy of commercially available transseptal devices in puncturing select materials relevant to CHD surgery.

METHODS: A custom-designed in vitro transseptal model was created. Transseptal devices included a metal needle, an RF needle, and an RF wire. Study materials included expanded polytetrafluoroethylene (ePTFE), polyester, and bovine pericardium; porcine atrial septum was the control material. The primary outcomes were (1) the number of 1-second RF pulses required to puncture for RF devices and (2) the peak force required to puncture for the metal needle.

RESULTS: Excluding ePTFE, RF-based devices punctured all materials at 5-10 g force with a single 1-second pulse. For ePTFE, the RF wire required a median of 4 seconds (range 2-6 seconds) of RF energy to puncture, whereas the RF needle failed entirely. The metal needle required higher forces across all materials, most drastically for polyester (median 277 g). The metal needle punctured ePTFE with reasonable force (median 68 g).

CONCLUSION: Commercially available RF transseptal platforms successfully puncture native septa, polyester, and bovine pericardium with short-duration RF energy delivered at low forces. Metal needles remain a cost-effective option when crossing native septum, ePTFE, and bovine pericardium. However, caution should be taken when puncturing polyester with the metal needle, given that substantially higher applied forces are required. The RF wire and metal needle are reasonable options for ePTFE puncture.

PMID:40714328 | DOI:10.1016/j.hrthm.2025.07.029

Esophageal reconstruction using a hypopharyngeal anastomosis – a single center experience with review of the literature

Lye ingestion or other esophageal trauma may require surgical reconstruction. The hypopharyngeal anastomosis during esophageal reconstruction is a technically demanding procedure with many nuances in approach…  Read More.

Esophageal reconstruction using a hypopharyngeal anastomosis – a single center experience with review of the literature

Lye ingestion or other esophageal trauma may require surgical reconstruction. The hypopharyngeal anastomosis during esophageal reconstruction is a technically demanding procedure with many nuances in approach…  Read More.

Giant right atrial myxoma emerging from the suprahepatic inferior vena cava, extending to the right atrium; a case report and literature review

Atrial myxomas are the most common primary cardiac tumors. In 20% of cases, they arise from the right atrium. Only a few such tumors are reported to have arisen from the inferior vena cava. We present the case…  Read More

Combinatorial Glyoxal Cross-Linking and Glutamic Acid Capping for Mitigating Calcification in Bovine Pericardium

Chem Asian J. 2025 Jul 21:e00652. doi: 10.1002/asia.202500652. Online ahead of print.

ABSTRACT

Bioprosthetic heart valves (BHVs) offer advantages over mechanical valves but are limited by long-term degeneration and calcification. This study aimed to develop a durable BHV material using decellularized bovine pericardium (BP) and alternative cross-linking strategies. BP was decellularized using a combination of sodium deoxycholate (SDC) and Triton X-100 (TX), which removed cellular components while preserving the extracellular matrix (ECM), as confirmed by histological, DNA quantification, and biochemical analyses. The impact of glutaraldehyde, glyoxal, tannic acid, and catechin cross-linking on calcification propensity and mechanical properties was evaluated. Glyoxal-cross-linked BP, further capped with 1% l-glutamic acid, demonstrated superior resistance to calcification while maintaining mechanical properties comparable to standard glutaraldehyde treatment. These results suggest that SDC-TX decellularized, glyoxal-cross-linked BP with l-glutamic acid capping presents a promising strategy for enhancing BHV durability and biocompatibility, offering a potential alternative to conventional glutaraldehyde.

PMID:40686436 | DOI:10.1002/asia.202500652

Machine learning in predicting preoperative intra-aortic balloon pump use in patients undergoing coronary artery bypass grafting

Intra-aortic balloon pump (IABP) implantation in the perioperative period of cardiac surgery is an auxiliary treatment for cardiogenic shock. However, there is a lack of effective prediction models for preoper…  Read More

Combinatorial Glyoxal Cross-Linking and Glutamic Acid Capping for Mitigating Calcification in Bovine Pericardium

Chem Asian J. 2025 Jul 21:e00652. doi: 10.1002/asia.202500652. Online ahead of print.

ABSTRACT

Bioprosthetic heart valves (BHVs) offer advantages over mechanical valves but are limited by long-term degeneration and calcification. This study aimed to develop a durable BHV material using decellularized bovine pericardium (BP) and alternative cross-linking strategies. BP was decellularized using a combination of sodium deoxycholate (SDC) and Triton X-100 (TX), which removed cellular components while preserving the extracellular matrix (ECM), as confirmed by histological, DNA quantification, and biochemical analyses. The impact of glutaraldehyde, glyoxal, tannic acid, and catechin cross-linking on calcification propensity and mechanical properties was evaluated. Glyoxal-cross-linked BP, further capped with 1% l-glutamic acid, demonstrated superior resistance to calcification while maintaining mechanical properties comparable to standard glutaraldehyde treatment. These results suggest that SDC-TX decellularized, glyoxal-cross-linked BP with l-glutamic acid capping presents a promising strategy for enhancing BHV durability and biocompatibility, offering a potential alternative to conventional glutaraldehyde.

PMID:40686436 | DOI:10.1002/asia.202500652