The Natural Laws Manifest Divine Programming
Karachi, Pakistan’s largest metropolis and economic engine, is facing an increasingly alarming environmental threat: land subsidence and urban flooding, raising fears that the city is “sinking.” This paper (Karachi is Sinking?) examines the multifaceted causes behind Karachi’s sinking, including unplanned urbanization, groundwater extraction, inadequate drainage systems, rising sea levels, and climate change. Historical evidence also suggests that seismic events in the region have caused portions of the coastal areas of Karachi and Sindh to submerge into the sea. The study reviews scientific literature, satellite data, historical records, and policy analyses to provide a comprehensive understanding of the crisis. It concludes with actionable policy recommendations for mitigation and resilience.
Karachi is Pakistan’s most populous city, a coastal mega-urban center home to over 20 million people and contributing more than 20% to the national GDP (Hasan & Raza, 2015). Over the past two decades, the city has faced increasing instances of urban flooding, saline intrusion, and infrastructure collapse. Beyond present-day vulnerabilities, seismic history reveals that parts of the region have previously subsided or been submerged into the sea. This paper investigates the scientific and historical basis of Karachi’s sinking and its contributing factors.

This research employs a qualitative and quantitative review of secondary data, including:
According to the IPCC Sixth Assessment Report (2021), South Asia’s coastal zones are highly vulnerable to sea-level rise due to global warming. Karachi, situated on the Arabian Sea, has witnessed a sea-level increase of approximately 1.1–1.3 mm/year over the past century (Singh et al., 2010). Local projections suggest this could accelerate to 6–8 mm/year by 2050 (Lashari, 2018).
Impact: Rising sea levels erode Karachi’s coastline, submerge low-lying neighborhoods like DHA Phase VIII, Korangi, and Lyari, and worsen saltwater intrusion into the aquifer.

Karachi’s reliance on underground aquifers, due to a failing municipal water system, has led to over-extraction of groundwater. Studies indicate a lowering of the water table by 1–3 meters per year in some districts (Ali & Khwaja, 2018). Land compaction resulting from depleted aquifers is a well-known driver of subsidence.
Much of Karachi’s infrastructure was built without geotechnical surveys. Satellite-based Interferometric Synthetic Aperture Radar (InSAR) analyses reveal that areas such as Landhi, Malir, and Orangi Town are subsiding at rates of 2–5 cm/year (NASA SERVIR, 2022).
Causes:
Karachi’s inadequate drainage network collapses during seasonal monsoons. In 2020, the city recorded its heaviest rainfall in nearly 90 years, leading to urban flooding that paralyzed life for weeks (Dawn, 2020). With each flood, the structural foundation of the city erodes, damaging roads and buildings.
Mangroves protect Karachi’s coasts from tidal surges and erosion. However, illegal real estate development and industrial pollution have reduced mangrove cover by 35% since 1990 (WWF-Pakistan, 2021). The loss of this natural buffer has accelerated shoreline retreat and subsidence.
Historical records and geological studies suggest that significant parts of the Karachi and Sindh coastline have sunk into the sea during past seismic events:
These episodes reinforce the long-term vulnerability of Karachi’s coastline to vertical displacement, especially due to tectonic instability and soft alluvial geology (Bilham, 2004; Kazmi & Rana, 1982).
Here’s an updated version of the “Increased Seismic Shaking in Karachi: An Alarming Signal?” section with 2025 seismic activity in Landhi and Malir integrated:
Karachi is situated near the Indian–Eurasian Plate boundary, influenced by multiple fault systems: the Makran Subduction Zone, Chaman Fault, and local faults such as the Landhi Fault.
In early 2025, Karachi experienced a noticeable increase in low to moderate-magnitude seismic events concentrated in the Landhi and Malir areas:
These events occurred at shallow depths (~10 km), increasing their surface impact. The concentration of seismic energy along the Landhi Fault suggests a localized reactivation of a buried fault system.
Geologists interpret the activity as follows:
The Landhi Fault Line, previously considered dormant, may be accumulating stress due to tectonic adjustments or triggered by offshore movements in the Makran region.
Karachi’s seismicity may also be influenced by strain redistribution from deeper seismic activity in Balochistan or Kirthar ranges.
Coastal sediment layers in Malir and Landhi amplify shaking, especially in informal settlements and industrial areas, increasing the likelihood of infrastructure collapse or liquefaction.
The 2025 seismic uptick in eastern Karachi — particularly Landhi and Malir — is a red flag. If these shallow quakes are foreshocks or indicators of stress accumulation, Karachi could face a more destructive event in the near future.
Preparedness, fault monitoring, and public awareness are urgently required.
Satellite imagery between 2015 and 2021 indicates coastal retreat in DHA by approximately 20–30 meters (NASA Earth Observatory, 2021). High-end developments are at risk due to both erosion and groundwater depletion. The highest displacement observed is − 28.6 mm/year in DHA Karachi Phase VIII Zone B and − 27.7 mm/year in DHA Karachi Phase 4. (Hussain, M.A., Chen, Z., Shoaib, M. et al. )
These inland industrial zones are subsiding faster than coastal districts due to excessive groundwater pumping and waste mismanagement. InSAR data shows significant vertical land movement in the range of -3 cm/year (SERVIR, 2022).
Jakarta, Indonesia, faces similar issues. Like Karachi, it suffers from over-extraction of groundwater, poor drainage, and rising seas. Jakarta is sinking by 5–10 cm/year and has initiated a $33 billion relocation plan (The Guardian, 2019). Karachi’s rates are slower but trends are parallel.
Increased seismic activity in an area already experiencing land subsidence — like parts of Karachi (e.g., Landhi, Malir, DHA) — suggests a converging geological crisis. This coupling of subsidence and tremors has serious implications:
Example: In 2025, shallow tremors in Landhi and Malir — already mapped as subsidence zones by NASA’s InSAR — hint at a crust under strain.
Karachi’s subsiding and seismically active zones are converging — especially in:
This makes these areas extremely vulnerable, even to moderate-magnitude earthquakes (M4–M5).
Yes — this compound hazard of seismic activity and land subsidence can potentially lead to a large sinkhole in vulnerable areas of Karachi under the right (or wrong) conditions. Let’s break down why this is a real possibility:
A sinkhole typically forms when:
In Karachi, these risk factors are emerging from both natural and anthropogenic causes:
| Factor | Karachi-Specific Examples |
|---|---|
| Subsidence | Caused by excessive groundwater withdrawal, especially in Landhi, Malir, DHA |
| Seismic shaking | Can loosen soil, crack underlying strata, and trigger sudden collapses |
| Soft, unconsolidated soil | Coastal Karachi is largely built on reclaimed land and estuarine clay, highly prone to liquefaction |
| Poor drainage and buried infrastructure | Increases water seepage and undermines foundations |
Earthquake → Cracks & loosened soil → Rainfall/water seepage → Cavity formation → Sinkhole collapse
✅ Yes, it is possible. While karstic rock dissolution (a common sinkhole cause) is rare in Karachi, artificial subsidence + shallow quakes + saturated loose soils are enough to form a large infrastructural sinkhole, especially after monsoon or pipeline failure.
Karachi’s vulnerability to land subsidence is no longer speculative – it is a multifaceted reality with historical precedent. Rising sea levels, excessive groundwater extraction, soft soil, and tectonic instability all contribute to the city’s sinking trajectory. Past seismic activity has caused the submergence of coastal towns near Karachi, showing that natural disasters can accelerate this process. Urgent interventions are needed to reverse the ecological degradation, manage water use, and redesign infrastructure to adapt to present and future risks.
Ali, S., & Khwaja, M. A. (2018). Karachi’s Water Woes. SDPI.
ADB. (2021). Post-Disaster Needs Assessment: Karachi Floods 2020.
Bilham, R. (2004). “Earthquakes in Pakistan and Northern India: Historical Review and Risk Analysis.” Seismological Research Letters.
Dawn. (2020). Karachi records heaviest rainfall in 89 years.
Hasan, A., & Raza, M. (2015). Responding to the Urbanization Challenge in Pakistan. UN-HABITAT.
IPCC. (2021). Sixth Assessment Report.
Kakar, A. M. et al. (2021). “Disease outbreaks due to urban flooding in Karachi.” Journal of Public Health (JPH).
NASA SERVIR. (2022). Land Subsidence in Karachi Using InSAR.
Singh, O. P. et al. (2010). Sea level rise in South Asia. Springer.
The Guardian. (2019). Jakarta is sinking: Indonesia to move capital.
WWF-Pakistan. (2021). Mangrove Loss in Sindh: Ecological and Economic Impacts.
Kazmi, A. H., & Rana, R. A. (1982). Geology of Karachi and Surrounding Areas.
This is a print publication, not digitized. You may find it via university geology departments or libraries.
Lashari, A. (2018). Impacts of Climate Change on Karachi’s Coastal Areas.
Not directly available online as a standalone publication. May be cited in environmental policy reports.