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Kanazawa University research: Watching Molecules Change Shape in Slow Motion

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KANAZAWA, Japan, July 7, 2026 /PRNewswire/ — Researchers at the Nano Life Science Institute (WPI-NanoLSI) at Kanazawa University, the Institute for Molecular Science, and SOKENDAI have uncovered the hidden mechanism behind a molecular switch—a molecule that can change between different structural states in response to a chemical signal. Their study, published in the Journal of the American Chemical Society, reveals how molecules can gradually switch between alternative states, a process that could help scientists design future molecular machines, smart materials, and molecular information technologies.

To make the discovery, Shigehisa Akine and colleagues created a specially designed molecular cage that changes shape unusually slowly. This allowed them to observe, for the first time, the sequence of molecular events that occurs after the molecule receives a chemical input. The study provides one of the clearest views yet of how molecular recognition triggers structural change and demonstrates that the response speed of a molecular system can itself be engineered through molecular design.

Building smarter molecular systems

Responsive molecular materials are attracting increasing attention for their potential to sense, process, and respond to changes in their environment. Such systems are considered important building blocks for future molecular machines, molecular information technologies, and other next-generation nanoscale devices.

A key challenge in designing these systems is understanding exactly how molecular switching occurs. Many molecules can exist in multiple stable states and change between them when exposed to external stimuli such as light, heat, or chemical signals. However, the triggering event is often so rapid that only the initial and final states can be observed, leaving the molecular pathway connecting them hidden from view.

To overcome this challenge, the Kanazawa University team designed a molecular cage in which both guest uptake and structural rearrangement occur unusually slowly, allowing the entire switching process to be followed in real time.

A molecular cage that changes its handedness

The researchers synthesized a triple-helical cobalt metallocryptand—a cage-shaped molecule formed from three intertwined molecular strands surrounding an internal cavity.

The molecule exists in two mirror-image forms, known as right-handed (P) and left-handed (M) structures. In solution, these forms slowly interconvert, with the right-handed form normally being the more abundant.

The molecular cage was specifically designed with flexible bridging ligands that partially seal its entrances. This closed-cage architecture dramatically slows the movement of guest ions into and out of the cavity, transforming a normally rapid process into one that unfolds over several hours.

Watching molecular switching in real time

When cesium ions were added to the solution, the researchers observed a remarkable transformation.

Over time, the molecular population gradually shifted from predominantly right-handed forms to predominantly left-handed forms. Because the switching process occurred slowly, the researchers were able to monitor the intermediate stages using nuclear magnetic resonance (NMR) and circular dichroism (CD) spectroscopy. X-ray crystallography and theoretical calculations were used to characterize the initial and final molecular states. Together, these complementary approaches allowed the team to follow the switching process in real time, capture structural snapshots of the molecular cage, and explain why the guest ion preferentially stabilized one molecular state over another.

A surprising mechanism

Chemists have long debated how guest-induced structural changes occur. In one model, known as the induced-fit model, a guest molecule first binds to a host structure, triggering a conformational change. In the alternative conformational selection model, multiple structural states already exist, and the guest selectively binds to the state it prefers.

The Kanazawa University team was able to resolve this question directly. Rather than binding to the dominant right-handed form and then triggering a structural change, cesium ions were found to preferentially bind to the less abundant left-handed form already present in solution. The results demonstrate that the switching process proceeds primarily through a conformational-selection mechanism rather than a classical induced-fit pathway.

The hidden pathway behind the switch

Once the cesium ion is trapped inside the molecular cage, the left-handed form becomes significantly more stable. This progressively shifts the molecular population toward the new state, ultimately reversing the balance between right-handed and left-handed structures. The overall switching process, therefore, emerges from a subtle interplay between guest recognition, structural dynamics, and molecular equilibrium.

Opposite signals, opposite responses

While cesium ions drive the system toward the left-handed state, chloride ions favor the right-handed form by interacting with binding sites on the exterior of the molecular cage. This ability to generate distinct responses to distinct chemical signals highlights the potential of such systems as intelligent, responsive materials capable of processing environmental information.

Toward smart molecular architectures

“Most molecular switches operate too quickly for us to see how they actually work,” says Professor Shigehisa Akine. “By designing a system in which guest uptake and structural switching occur on similar time scales, we were able to uncover the hidden pathway that connects them. We believe these principles will be valuable for the rational design of future smart molecular architectures, including responsive materials, molecular machines, and systems capable of storing and processing molecular information.”

Beyond revealing a previously hidden switching pathway, the study demonstrates that the response speed of a molecular system can itself be engineered through molecular design—a capability that may prove important in the development of future smart molecular architectures.

Key Concepts and Methods

Chirality – the property of existing in right- and left-handed forms.

Conformational selection – a mechanism in which a guest binds preferentially to one of several pre-existing molecular structures.

Nuclear magnetic resonance (NMR) spectroscopy and circular dichroism (CD) spectroscopy – complementary techniques used to monitor the intermediate stages of the molecular switching process.

X-ray crystallography, spectroscopy, and theoretical modeling – complementary techniques used to reveal how the molecular switching process occurs.

https://nanolsi.kanazawa-u.ac.jp/wp/wp-content/uploads/Fig.1-2.png

Fig. 1. Typical guest-induced inversion between the right-handed (P) and left-handed (M) forms. Guest molecules or ions bind rapidly, making the chirality inversion appear instantaneously. As a result, the intermediate processes have been difficult to observe and remain poorly understood.

https://nanolsi.kanazawa-u.ac.jp/wp/wp-content/uploads/Fig.2.png

Fig. 2. Structure of the triple-helical closed-cage molecule. Slow uptake of cesium ions (Cs⁺) into the internal cavity is accompanied by a gradual shift in the ratio of the right-handed (P) and left-handed (M) forms.

https://nanolsi.kanazawa-u.ac.jp/wp/wp-content/uploads/Fig.3-1.png

Fig. 3. Changes in the ratio of the right-handed (P) and left-handed(M) forms of the triple-helical closed-cage molecule during guest uptake. Because of the closed-cage structure, guest binding (the “input”) occurs slowly, and the P/M interconversion is also slow. This allows the intermediate states to be analyzed, enabling distinction between the two possible pathways (A and B). Kinetic analysis revealed that, in the present system, the pathway proceeds via initial guest uptake by the less abundant M form (pathway A).

Reference

Interplay between Slow Chirality Inversion and Slow Guest Uptake in a Triple-Helical Closed-Cage Metallocryptand, Sk Asif Ikbal, Masahiro Ehara, and Shigehisa Akine, J. Am. Chem. Soc., published online on 29 June 2026.

DOI:10.1021/jacs.6c09090

URL:https://doi.org/10.1021/jacs.6c09090 

Acknowledgements

This research was supported by JSPS KAKENHI (Grant Numbers JP18H03913, JP20K21206, JP21H05477, JP22H05133, JP22H05131, JP23H04021, JP23H01972, JP23K26665, JP23K17928, and JP25K08670), the World Premier International Research Center Initiative (WPI), MEXT, Japan, and the Research Center for Computational Science (Project No. 26-IMS-C236).

Contacts

Motoko YASUHARA
Project Planning and Outreach, NanoLSI Administration Office
Nano Life Science Institute, Kanazawa University
Email: nanokoho@adm.kanazawa-u.ac.jp
Kakuma-machi, Kanazawa 920-1192, Japan
National Institutes of Natural Sciences, Institute for Molecular Science
Research Enhancement Strategy Office, Public Relations
Email: press@ims.ac.jp

Nano Life Science Institute (WPI-NanoLSI), Kanazawa University

Understanding nanoscale mechanisms of life phenomena by exploring “uncharted nano-realms.” Cells are the basic units of life. At NanoLSI, researchers develop nanoprobe technologies that enable direct imaging, analysis, and manipulation of biomolecules such as proteins and nucleic acids inside living cells. By visualizing these processes at the nanoscale, the institute seeks to uncover fundamental principles of life and disease.

https://nanolsi.kanazawa-u.ac.jp/en/

About the World Premier International Research Center Initiative (WPI)

The WPI program was launched in 2007 by Japan’s Ministry of Education, Culture, Sports, Science and Technology (MEXT) to foster world-class research centers with outstanding research environments. WPI centers enjoy a high degree of autonomy, enabling innovative management and global collaboration. The program is administered by the Japan Society for the Promotion of Science (JSPS).

WPI News Portal

https://www.eurekalert.org/newsportal/WPI 

Main WPI program site

www.jsps.go.jp/english/e-toplevel 

About Kanazawa University

Founded in 1862 in Ishikawa Prefecture, Kanazawa University is one of Japan’s leading comprehensive national universities with a history spanning more than 160 years. With campuses at Kakuma and Takaramachi–Tsuruma, the university upholds its guiding principle of being “a research university dedicated to education, while opening its doors to both local and global society.”

Internationally recognized for its research institutes, including the Nano Life Science Institute (WPI-NanoLSI) and the Cancer Research Institute, Kanazawa University promotes interdisciplinary research and global collaboration, driving progress in health, sustainability, and culture.

http://www.kanazawa-u.ac.jp/en/ 

 

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European Telcos Push EMEA 5G Mobile Core Revenue to a New High in 2Q 2026, According to Dell’Oro Group

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Sharp IMS Revenue Contraction Brings Down Market

REDWOOD CITY, Calif., Aug. 24, 2026 /PRNewswire/ — According to a recently published report from Dell’Oro Group, the trusted source for market information about the telecommunications, security, networks, and data center industries, 5G Mobile Core Network (MCN) revenue in EMEA grew over 30 percent in 2Q 2026, contributing more revenue to the worldwide 5G MCN market than any other region.

“So far in 2026, eighty percent of the operators to have launched 5G Standalone (SA) networks for consumer services have been in Europe,” stated Siân Morgan, Sr. Director at Dell’Oro Group. “This helped EMEA 5G MCN revenue to reach a high-water mark in 2Q 2026, and we expect this region will keep expanding in the coming quarters.

“The growth in 5G MCN occurred despite an escalation in server prices causing mobile network operators to scrutinize the cost of network projects. On the other hand, IMS revenue contracted for the third quarter in a row, with most regions seeing a drop in Voice core revenue,” continued Morgan.

Additional highlights from the 2Q 2026 Mobile Core Network and Multi-Access Edge Computing Report include:

MCN market dynamics were stable, with Huawei, Ericsson and Nokia growing MCN revenue in alignment with total market expansion.
4G Wireless Packet Core revenue outpaced the market for the third quarter in a row, driven by mobile network operators that have not yet moved to 5G SA.
In nominal terms, revenue from 5G MCN has still not reached the levels achieved by 4G MCN, with the pressure to automate operations and grow ARPU counterbalanced by the rising cost of infrastructure.

About the Report
The Dell’Oro Group Mobile Core Network & Multi-Access Edge Computing Quarterly Report offers complete, in-depth coverage of the market with tables covering manufacturers’ revenue, shipments, and average selling prices for Traditional Packet Core, Evolved Packet Core, 5G Packet Core, Policy, Subscriber Data Management, Signaling, Circuit Switched Core, and IMS Core by geographic regions. To purchase this report, please contact us at dgsales@delloro.com.

About Dell’Oro Group
Dell’Oro Group is a market research firm that specializes in strategic competitive analysis in the telecommunications, security, enterprise networks, and data center infrastructure markets. Our firm provides in-depth quantitative data and qualitative analysis to facilitate critical, fact-based business decisions. For more information, contact Dell’Oro Group at +1.650.622.9400 or visit https://www.delloro.com.

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SOURCE Dell’Oro Group

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YADEA and J&T Express Philippines Sign Strategic Agreement to Advance Electric Last-Mile Delivery

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TAGUIG CITY, Philippines, Aug. 25, 2026 /PRNewswire/ — Yadea Philippines and J&T Express have announced a strategic partnership to accelerate the adoption of electric vehicles in the local logistics sector. Manila will serve as the pilot with 1,000 units rolling out initially, followed by nationwide expansion.

As the global No.1 electric two-wheeler brand for nine consecutive years, Yadea operates over 70 branded sales and service centers, with flagship models like EPOC and CL8. Partnering with J&T Express, a leading Philippine courier, will accelerate Yadea’s entry into the local logistics market. Together, they aim to optimize logistics and drive a greener, low-carbon future for express delivery, reflecting the companies’ shared commitment to sustainable urban mobility and environmental stewardship.

YADEA ST13 is an electric delivery tricycle designed for high-frequency, short-distance commercial delivery scenarios. It integrates energy-efficient transport systems purpose-built for high-frequency urban dispatch. The unit features a weight-reducing mesh cargo box that directly optimizes battery range, paired with premium A+ grade puncture-resistant steel-wire tires designed for continuous delivery operational capability.

Yadea General Manager of the Philippines Wang Chun stated, “This cooperation reflects a deep synergy between product capability and logistics networks, representing a practical response to the country’s demand for green transportation. We hope our locally tailored electric vehicles allow delivery personnel to ride with greater peace of mind and operate more efficiently, injecting tangible momentum into low-carbon urban logistics.”

J&T Express Philippines National Capital Region Key Account Manager Mary Andaya stated, “Through this collaboration, we are actively integrating electric vehicle solutions into our last-mile operations. This initiative optimizes our daily workflow while aligning with our shared direction of collaborating on the large-scale adoption of electric tricycles for deliveries to enhance delivery efficiency within the local logistics sector.”

About YADEA

YADEA is a leading electric mobility brand and has ranked No.1 globally in electric two-wheeler sales for nine consecutive years. Driven by innovation, YADEA provides electric two-wheelers, electric tricycles and other mobility solutions to users around the world through its integrated capabilities in R&D, manufacturing, products channels and services.

About J&T Express Philippines

J&T Express Philippines, a nationwide logistics provider established in 2019, offers express delivery services via land, air, and sea. The company operates automated distribution centers and maintains extensive trucks and delivery services that run 24/7, ensuring that packages are safely delivered across the Philippines.

Contact:
media@yadea.com

 

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SOURCE Yadea Philippines

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L2 Aviation and Gotonomi Extend UAV Connectivity Beyond Cellular Reach

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Collaboration combines L2 Aviation’s integration and certification expertise with Gotonomi’s compact satellite communications technology to support reliable operations in remote and connectivity-constrained environments.

ERLANGER, Ky. and CAMBRIDGE, England and CINCINNATI, Aug. 24, 2026 /PRNewswire/ — L2 Aviation, a global provider of avionics integration, engineering, certification, manufacturing, and aircraft modification services, today announced a strategic partnership with Gotonomi to advance integrated satellite connectivity solutions for uncrewed aerial vehicle (UAV) and Advanced Air Mobility (AAM) operators throughout North America.

The partnership combines L2 Aviation’s aviation integration and certification capabilities with Gotonomi’s compact satellite communications technology. Together, the companies will help operators integrate reliable connectivity into UAV and AAM platforms operating in locations where cellular, Wi-Fi, and other terrestrial communications may be limited or unavailable.

ADVANCING CONNECTED UAV OPERATIONS

The planned solutions will use Gotonomi’s lightweight UAV communications technology and access to Viasat’s Velaris ecosystem, a satellite communications service developed for UAV and AAM operations.

L2 Aviation joined the Viasat Velaris ecosystem through Galaxy 1 Communications in May 2026, bringing nearly three decades of avionics integration, certification, and safety-critical aircraft modification experience to the growing uncrewed aviation market.

The partnership will support the integration of resilient connectivity for command and control, telemetry, operational information, and mission-critical data. L2 Aviation will provide the engineering, integration, installation, and certification support needed to incorporate Gotonomi technology into customer aircraft and operating platforms.

“UAV and Advanced Air Mobility platforms cannot reach their full operational potential when connectivity, aircraft integration, certification, and deployment are treated as separate challenges,” said Tony Bailey, President and Chief Operating Officer of L2 Aviation. “This partnership brings those disciplines together through a complete, aircraft-level solution. Gotonomi’s leading-edge satellite communications technology, Viasat’s Velaris service, and L2 Aviation’s engineering and certification capabilities create an integrated path from system architecture and installation through regulatory approval and operational deployment. The result addresses a critical industry need for reliable command and control, telemetry, and mission data connectivity, especially when aircraft operate beyond the reach of terrestrial networks.”

The partnership creates a coordinated path for UAV manufacturers, operators, and mission-system providers seeking satellite-connected solutions that address aircraft integration, regulatory approval, and operational deployment.

“Energy and infrastructure operators increasingly need aircraft that can remain connected well beyond the reach of traditional communications networks,” said Matthew Hill, General Manager at Gotonomi. “Combining Gotonomi’s compact communications technology with L2 Aviation’s integration and certification experience creates a compelling pathway for operators looking to scale UAV missions into more demanding environments.”

EXPANDING UAV CAPABILITIES ACROSS THE ENERGY SECTOR

L2 Aviation sees significant opportunities for satellite-connected UAVs across multiple industries including energy, government, and others, where operators routinely inspect and service assets across large, remote, or difficult-to-access areas.

“Reliable connectivity is one of the fundamental requirements for expanding what unmanned aircraft can accomplish,” said Jeff Rex, CRO of L2 Aviation “Our goal is to provide customers with more than another piece of hardware. L2 can take the connectivity technology, integrate it with mission-critical systems, address the certification and installation requirements, and deliver a complete solution that leverages the heritage of decades of experience with safety certified satellite networks.”

Satellite connectivity also has the potential to expand the effectiveness of Beyond Visual Line of Sight (BVLOS) operations by maintaining communications beyond the practical limits of conventional terrestrial networks.

About L2 Aviation

L2 Aviation is a full-service aerospace engineering, certification, manufacturing, maintenance, integration, and product-support company serving commercial, business, military, uncrewed, and special-mission aviation markets worldwide. Operating from facilities in Cincinnati, Ohio, and Indianapolis, Indiana regions, L2 provides STC development, avionics and connectivity integration, aircraft modifications, wiring harness and PMA kit production, precision machining, sheet-metal and structural fabrication, composite repair, avionics upgrades, and aftermarket aircraft materials and component sales. L2 also delivers rapid field installation, maintenance, and AOG support through its Remote Avionics Modification Services (RAMS) team. Working with aircraft operators, OEMs, government agencies, and technology providers, L2 delivers integrated, certifiable, and mission-ready solutions for complex aerospace and defense requirements. Complex Missions. Complete Solutions. Learn more at www.l2aviation.com.

About Gotonomi

Gotonomi develops compact satellite and cellular communications technology for uncrewed and remotely piloted vehicles. Its low-size, weight and power communications systems are designed to provide resilient connectivity for UAV operations, including command and control, telemetry and mission data, helping operators expand safe and scalable Beyond Visual Line of Sight operations. Learn more at https://gotonomi.com/

Media Contact:
Jacob Vance
l2news@l2aviation.com

Photo(s):
https://www.prlog.org/13166519

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SOURCE L2 Aviation

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