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Novogene
  • Novogene
  • Genomics
    • Human Whole Genome Sequencing
    • Whole Exome Sequencing
    • Plant and Animal Whole Genome Sequencing
    • Plant and Animal De Novo Sequencing
    • Microbial Whole Genome Sequencing
    • Microbial De Novo Sequencing

    Metagenomics

    • Shotgun Metagenomics Sequencing
    • Amplicon Sequencing

    Transcriptomics

    • mRNA Sequencing
    • Swift & Express mRNA Sequencing New!
    • Full-Length Transcriptome Sequencing
    • Prokaryotic RNA Sequencing
    • Metatranscriptome Sequencing
    • Total RNA Sequencing
    • Small RNA Sequencing (sRNA‑seq)
    • Whole Transcriptome Sequencing

    Single Cell & Spatial Omics

    • 10x Single Cell Gene Expression
    • Illumina PIP-seq Single Cell 3’ RNA Sequencing New!
    • Spatial Transcriptomics Sequencing New!

    Epigenomics

    • Whole Genome Bisulfite Sequencing (WGBS)
    • Enzymatic Methylation Sequencing
    • Directed Methylation Sequencing (DM-Seq) New!
    • RNA Immunoprecipitation Sequencing (RIP-seq)
    • Chromatin Immunoprecipitation Sequencing (ChIP-seq)
    • Cleavage Under Targets & Tagmentation (CUT&Tag) New!
    • Assay for Transposase-Accessible Chromatin with Sequencing (ATAC-seq)
    • Reduced Representation Bisulfite Sequencing (RRBS)

    Proteomics

    • Quantitative Proteomics New!
    • PTM Proteomics New!
    • Olink Proteomics New!

    Metabolomics

    • Untargeted Metabolomics

    Premade Library

    • Sequencing Only on Illumina Sequencer
    • Sequencing Only on Ultima Sequencer
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    • Agrigenomics
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    • Drug Discovery and Development
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    • mRNA Sequencing
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mRNA SequencingSwift & Express mRNA SequencingTotal RNA SequencingHuman Whole Genome SequencingWhole Exome Sequencing10x Single Cell Gene ExpressionIllumina PIP-seq Single Cell 3’ RNA SequencingSpatial Transcriptomics SequencingWhole Genome Bisulfite Sequencing (WGBS)Quantitative ProteomicsUntargeted MetabolomicsShotgun Metagenomics SequencingMetatranscriptome SequencingSequencing Only on Illumina SequencerSequencing Only on Ultima SequencerFull-Length Transcriptome SequencingChromatin Immunoprecipitation Sequencing (ChIP-seq)
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Rare and Complex Diseases

Overview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

Overview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

1. Global Commission to End the Diagnostic Odyssey for Children with a Rare Disease, 2019 https://www.globalrarediseasecommission.com/AboutUs

2. Smedley, D. et al. 100,000 Genomes Pilot on Rare-Disease Diagnosis in Health Care – Preliminary Report. N. Engl. J. Med. 385, 1868–1880 (2021)

Genomics Application in Rare and Complex Diseases

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

Genomics Application in Rare and Complex Diseases

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

More services

Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
ChIP-Seq
ChIP-Seq
ChIP-Seq
ChIP-Seq
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing

More services

Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
ChIP-Seq
ChIP-Seq
ChIP-Seq
ChIP-Seq
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing

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Rare and Complex Diseases

Overview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

Overview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

A disease is classified as rare if it affects less than six patients per 10,000 people in the general population. Due to the low prevalence of such diseases, the road to diagnosis often termed the “diagnostic odyssey”, can last for more than 5 years (1). As a total of 80% of rare diseases have a genetic component (2), the use of Next-Generation Sequencing (NGS) technologies can provide information on the underlying genetic aetiology, resulting in a faster diagnosis and helping patients start treatment programs much more quickly. Uncovering the underlying causes reveals precision medicine treatment options for patients and can be of huge benefit for care standards and symptom management.


Complex diseases are multifactorial and have both genetic and environmental components. The genetic backgrounds of these diseases are often polygenic and do not follow a Mendelian pattern of inheritance. More importantly, many of the mutations responsible are in complex non-coding regions of the genome. Recent developments in NGS technologies have made these regions more accessible for analysis and are accelerating complex disease research.

Preview

1. Global Commission to End the Diagnostic Odyssey for Children with a Rare Disease, 2019 https://www.globalrarediseasecommission.com/AboutUs

2. Smedley, D. et al. 100,000 Genomes Pilot on Rare-Disease Diagnosis in Health Care – Preliminary Report. N. Engl. J. Med. 385, 1868–1880 (2021)

Genomics Application in Rare and Complex Diseases

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

Genomics Application in Rare and Complex Diseases

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

Genomics supports rare and complex disease research by uncovering molecular patterns that may not be evident through conventional approaches. It helps researchers explore diverse types of genomic variation and gain a more comprehensive view of disease biology.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

It also enables the integration of genomic data with clinical and phenotypic information. These insights support more accurate disease classification, improved research into underlying mechanisms, and the development of more personalized therapeutic strategies.

More services

Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
ChIP-Seq
ChIP-Seq
ChIP-Seq
ChIP-Seq
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing

More services

Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
Whole Transcriptome Sequencing
ChIP-Seq
ChIP-Seq
ChIP-Seq
ChIP-Seq
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Reduced Representation Bisulfite Sequencing (RRBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Genome Bisulfite Sequencing (WGBS)
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing
Whole Exome Sequencing

Tell Us More About Your Next Project

We are able to support your research by generating high-quality, publication-ready data in a rapid time-frame. Reach out to us and we will get back to you shortly.
Contact Us
(Tell Us More About Your Next Project)
Contact Us
(Tell Us More About Your Next Project)
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