**Summary:**
A research team at the National Institute of Technology Calicut has developed a novel nanosensor-based device for rapid and accurate detection of endotoxins, key biomarkers for sepsis, a life-threatening condition. Supported by the Department of Science and Technology (DST) Nano Mission, this point-of-care device utilizes electrochemical biosensors and nanomaterials, including gold atomic clusters/nanoparticles, CuO, Cu nanoclusters, MoS2, reduced graphene oxide, or carbon nanotubes, to enhance sensitivity. The device can detect endotoxins in blood serum within 10 minutes using a standard addition method.
The research resulted in eight distinct sensor architectures, with seven employing electrochemical detection and one utilizing optical detection. One electrochemical sensor chip demonstrated high sensitivity for selective detection of Lipopolysaccharide (LPS) and is compatible with a portable analyzer. The sensors exhibited high selectivity and detected endotoxin in the presence of interfering compounds, including pharmaceutical drugs (Biphasic isophane insulin), fruit juices, and whole blood, with endotoxin recovery within 2%. Two electrochemical platforms also enabled sensitive detection of E. coli in water samples, comparable to traditional biological methods but with reduced analysis time.
The team designed, built, and tested a cost-effective, portable electrochemical biosensor prototype for endotoxin detection. The device's functionality includes an Android smartphone user interface. Research findings have been published in seven peer-reviewed international journals, including Biosensors and Bioelectronics and Langmuir, and have resulted in one granted patent for the prototype device. The researchers are currently working to improve the device's sensitivity for rapid, bedside biomarker detection.
Key Entities Referenced
Ministry of Science Technology: The Indian government ministry responsible for science and technology policy and initiatives.
National Institute of Technology Calicut: An engineering and technology institute located in Kerala, India, where the scientists who developed the nanosensor are from.
Sepsis: A serious medical condition caused by an infection that can lead to multiple organ failure, shock, and death; early diagnosis is crucial.
Endotoxin: A toxic component of the outer membrane of Gram-negative bacteria, used as a key biomarker for sepsis detection.
Langmuir: A journal in which the team's research on a highly sensitive electrochemical sensor chip was published.
E. coli: A specific type of Gram-negative bacteria that the electrochemical platforms were able to detect in water samples.
Nano Mission of the Department of Science and Technology DST: The program of the Department of Science and Technology that supported the research.
Biosensors and Bioelectronics: A reputed international journal where research related to the nanosensor was published.
Ministry of Science & Technology
New nano-sensor developed can detect deadly
infections in minutes
Posted On: 23 JUL 2025 4:33PM by PIB Delhi
A new highly sensitive, low-cost, point-of-care device with an electrochemical biosensor could help early
diagnosis of sepsis at the bedside of the patient.
Sepsis is a serious medical condition caused by an infection that can lead to multiple organ failure, shock and
even death. Early and accurate diagnosis is crucial for timely therapeutic intervention and improving patient
outcomes, which in turn directly impact mortality rates. Early diagnosis is possible with the precise and
sensitive detection of specific biomarkers. Endotoxin, a toxic component of the outer membrane of Gram-
negative bacteria, acts as a key biomarker, signalling the presence of an infection that could lead to sepsis.
A group of scientists from the National Institute of Technology Calicut developed eight distinct sensor
architectures and a sensitive, low-cost, portable device for detecting endotoxins rapidly and accurately, which
in the future can be used at the bedside of the patient.
Seven of them developed by Dr. N. Sandhyarani, Professor, National Institute of Technology Calicut and her
team employed electrochemical detection and one utilized optical detection. In all the sensors, appropriately
modified nanomaterials such as gold atomic clusters or nanoparticles, CuO, or Cu nanoclusters, MoS ,
2
reduced graphene oxide, or carbon nanotubes were used for enhancing the sensitivity.
In a paper published in the journal Langmuir, the team has demonstrated a highly sensitive electrochemical
sensor chip designed for the selective detection of Lipopolysaccharide (LPS), which is compatible with a
portable analyzer for on-site detection. The sensor is fabricated using functionalized CNT (fCNT) and
copper(I) oxide nanoparticles (Cu O).
2
The specific binding of endotoxin to LPS-binding Aptamers or polymyxin B was used to improve selectivity.
All the sensors have exhibited high selectivity and detected endotoxin in the presence of other interfering
compounds. The presence of endotoxin is also detected in pharmaceutical drug-Biphasic isophane insulin,
fruit juices, and whole blood by the standard addition method. Endotoxin recovery was within 2% error in all
the cases.
Two of these electrochemical platforms demonstrated versatility by enabling the sensitive detection of Gram-
negative bacteria, specifically E. coli, in water samples.
The analysis demonstrates that the quantification of E. coli using these platforms is comparable to traditional
biological methods, and also reduces analysis time. This highlights their potential for efficient water quality
monitoring.
After creating various electrochemical sensor surfaces, we the team shifted focus to building a point-of-care
device. The team has designed, built, and tested a portable and cost-effective electrochemical biosensor
prototype specifically for endotoxin detection. This device detects endotoxin in blood serum using a standard
addition method, providing results within 10 minutes.Fig. Schematic diagram showing the sensor chip and working of the device. (i) Photographs of the portable
endotoxin detection device, (ii) Operational steps in the Android smartphone user interface for the device, (iii)
(A) calibration plot of endotoxin detection with the device in (A) blood samples and (B) grape juice samples.
–1
The log (concentration of endotoxin in g mL ) vs change in voltage received is plotted.
This research, supported by the Nano Mission of the Department of Science and Technology (DST), has
resulted in seven publications in reputed international journals such as Biosensors and Bioelectronics,
Langmuir (two cover pages), Analyst, and Analytica Chimica Acta and one granted patent for the prototype
device.
The researchers are now improving the sensitivity of the prototype device by refining the electronic design to
enable a highly sensitive and selective point-of-care (POC) device suitable for rapid, bedside biomarker
detection.
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NKR/PSM
(Release ID: 2147349)